Lithium ion battery having an anode comprising a blend of intercalation-type anode material and conversion-type anode material
A Li-ion battery anode combining intercalation and conversion materials improves capacity and charging speed, overcoming conventional limitations by using core-shell nanocomposites and internal pores, resulting in efficient and stable performance.
Patent Information
- Application Number
- JP2025183582
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2020-04-03
- Filing Date
- 2025-10-30
- Publication Date
- 2026-02-10
AI Technical Summary
Conventional Li-ion batteries fail to achieve high specific and volumetric capacity, sufficient low irreversible Li loss during formation, long cycle life, stable performance at varying temperatures, and fast charging, leading to increased costs and reduced battery energy density.
A Li-ion battery anode comprising a blend of intercalation-type and conversion-type materials, where the conversion-type material has a specific reversible capacity of 1400-2200 mAh/g and a first cycle coulombic efficiency of 88-96%, with core-shell nanocomposite particles and internal pores, enhancing the anode's performance.
The blended anode achieves high areal capacity loading, reduced electrode thickness, and faster charge times, while maintaining stability and efficiency, addressing the limitations of conventional anodes.
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Abstract
Description
[Technical Field]
[0001] (CROSS-REFERENCE TO RELATED APPLICATIONS) This application claims the benefit of U.S. Provisional Patent Application No. 63 / 005044, filed April 3, 2020, entitled "LITHIUM-ION BATTERY ANODES COMPRISING BLENDS OF INTERCALATION-TYPE CARBONACEOUS ANODE MATERIALS AND CONVERSION-TYPE ANODE MATERIALS AND COMPOSITIONS OF BATTERY CELLS COMPRISING SAME," which is expressly incorporated herein by reference in its entirety.
[0002] TECHNICAL FIELD Embodiments of the present disclosure relate generally to energy storage devices, and more particularly to battery technology and the like. [Background technology]
[0003] Due in part to their relatively high energy density, relatively high specific energy, light weight, and potential for long life, advanced secondary batteries are desirable for a wide range of wearable portable consumer electronics, electric vehicles, grid storage, space, and other critical applications.
[0004] Despite the commercial adoption of conventional Li-ion secondary batteries, further development of these batteries is needed, particularly for potential applications in battery-powered land, sea, and air vehicles (including unmanned or autonomous vehicles), consumer electronics, drones, and space applications, among others. Fabrication of anodes with high specific and volumetric capacity, sufficiently low irreversible Li loss during the formation cycle, long cycle life, stable performance at both low and high temperatures, fast charging, and the ability to provide high rate capability is critical for reducing battery costs and increasing volumetric and gravimetric battery energy density. Unfortunately, conventional routes to producing such electrodes often do not achieve the desired performance characteristics, require additional effort and cost, and often result in unnecessarily poor rate capability and stability.
[0005] Therefore, there remains a need for improvements in battery cells, components / ingredients and other related materials and manufacturing processes. Summary of the Invention
[0006] The following provides a simplified summary of one or more aspects of the presently disclosed mechanisms. Accordingly, the following summary is not intended to be an exhaustive overview of all possible aspects, nor is it intended to identify key or critical elements of all possible aspects or to delineate the scope associated with any particular aspect. Accordingly, the following summary is intended solely to present certain concepts of one or more aspects of the presently disclosed mechanisms in a simplified form, prior to the detailed description presented below.
[0007] In one embodiment, a Li-ion battery includes an anode electrode and a cathode electrode, an electrolyte ionically bonding the anode electrode and the cathode electrode, and a separator electrically separating the anode electrode and the cathode electrode, wherein the anode electrode comprises a mixture of a conversion-type anode material and an intercalation-type anode material, wherein the conversion-type anode material exhibits a median specific reversible capacity in the range of about 1400 mAh / g to about 2200 mAh / g, and the conversion-type anode material exhibits a first cycle coulombic efficiency in the range of about 88% to about 96%.
[0008] In some embodiments, the conversion anode material comprises about 40% to about 60% Si by weight.
[0009] In some embodiments, the conversion anode material comprises core-shell nanocomposite particles.
[0010] In some embodiments, the average thickness of the outer shell of the core-shell nanocomposite particles ranges from about 1 nm to about 20 nm.
[0011] In some embodiments, the conversion anode material comprises one or more internal pores that are inaccessible to the electrolyte.
[0012] In some embodiments, the volume of the one or more internal pores is from about 0.1 to about 1 cm 3 / g range.
[0013] In some embodiments, the average size of the one or more internal pores ranges from about 1 nm to about 50 nm.
[0014] In some embodiments, the conversion anode material is present at a concentration of about 1 to about 2 g / cm 3 The density in the range is shown.
[0015] In some embodiments, the conversion anode material has a concentration of about 1 to about 25 m 2 The specific surface area in the range of / g is shown.
[0016] In some embodiments, the conversion anode material comprises Si-containing nanoparticles having a volume average size in the range of about 2 nm to about 40 nm.
[0017] In some embodiments, the conversion type anode material comprises less than about 2% by weight of oxygen (O).
[0018] In some embodiments, the conversion type anode material comprises less than about 0.5% by weight hydrogen (H).
[0019] In some embodiments, the conversion anode material comprises about 6% to about 60% carbon (C) by weight.
[0020] In some embodiments, the conversion anode material exhibits a core-shell structure, wherein the shell of the core-shell structure is sp 2 Contains bonded carbon.
[0021] In some embodiments, the ratio of the intensity of the Raman D band to the intensity of the Raman G band (I D / I G ) is in the range of about 0.7 to about 2 when recorded on the conversion-type anode material when configured as a powder using a Raman spectrometer equipped with a laser operating at a wavelength of about 532 nm.
[0022] In some embodiments, the anode electrode, excluding any current collector foil components, exhibits a gravimetric capacity ranging from about 400 mAh / g to about 1200 mAh / g.
[0023] In some embodiments, the anode electrode, the cathode electrode, or both, have a current density of about 3 to about 4.5 mAh / cm 2 or about 4.5 to about 8 mAh / cm 2 The reversible areal capacity is shown in the range of
[0024] In some embodiments, the anode electrode comprises soft carbon, hard carbon, synthetic graphite, or natural graphite.
[0025] In some embodiments, the anode electrode, excluding any current collector foil components, has a density of about 1.2 g / cm 3 to approximately 1.8 g / cm 3 The density in the range is shown.
[0026] In some embodiments, the anode electrode comprises a polymer or copolymer binder.
[0027] In some embodiments, the anode electrode, excluding any current collector foil component, comprises about 2% to about 7% by weight of a polymer or copolymer binder.
[0028] In some embodiments, the polymer or copolymer binder comprises alginic acid and its various salts, polyacrylic acid (PAA) or its salts, carboxymethyl cellulose (CMC), alginic acid or its salts, styrene butadiene rubber (SBR), or combinations thereof.
[0029] In some embodiments, the cathode electrode comprises an intercalation-type cathode material comprising Ni, Co, Mn, Fe, or a combination thereof.
[0030] In some embodiments, the electrolyte includes both one or more esters and one or more cyclic carbonates.
[0031] In some embodiments, the volume fraction of the one or more esters ranges from about 20% to about 90% by volume as a fraction of the total solvent in the electrolyte.
[0032] In some embodiments, the one or more esters include one or more branched esters, and the one or more branched esters include ester molecules having an average of between about 5 and about 7 carbon (C) atoms per molecule.
[0033] Other objects and advantages associated with the embodiments disclosed herein will become apparent to those skilled in the art upon review of the accompanying drawings and detailed description.
[0034] The accompanying drawings are presented to aid in the description of embodiments of the present invention and are provided solely for the purpose of illustrating the embodiments and not as limitations thereof. [Brief explanation of the drawings]
[0035] [Figure 1]FIG. 1 illustrates an exemplary (eg, Li-ion) battery to which the components, ingredients, materials, methods and other techniques described herein, or combinations thereof, may be applied in accordance with various embodiments. [Figure 2] FIG. 2 shows an exemplary Raman spectrum of a C-containing conversion-type anode particle that may be used in an exemplary formation of a blend anode. [Figure 3] FIG. 3 shows an exemplary scanning electron microscope (SEM) image of a blend anode with suitable composition and properties. [Figure 4] FIG. 4 shows exemplary performance characteristics of a blend anode with suitable composition and properties. [Figure 5A] FIG. 5A shows exemplary performance characteristics of a blend anode with suitable composition and properties. [Figure 5B] FIG. 5B shows exemplary performance characteristics of a blended anode with suitable composition and properties. [Figure 6] FIG. 6 shows exemplary performance characteristics of a blend anode with suitable composition and properties. [Figure 7A] FIG. 7A shows exemplary performance characteristics of a blend anode with suitable composition and properties. [Figure 7B] FIG. 7B shows exemplary performance characteristics of a blend anode with suitable composition and properties. [Figure 8] FIG. 8 shows exemplary performance characteristics of a blend anode with suitable composition and properties. DETAILED DESCRIPTION OF THE INVENTION
[0036] Aspects of the present invention are disclosed in the following description and related drawings directed to specific embodiments of the invention. The term "embodiments of the invention" does not require that all embodiments of the invention include the described features / structures, advantages, processes, or modes of operation, and alternative embodiments may be devised without departing from the scope of the invention. Additionally, well-known elements of the invention may not be described in detail or may be omitted so as not to obscure other more relevant details.
[0037] While the following description may describe particular examples in the context of secondary and primary Li and Li-ion batteries (for simplicity and convenience, and due to the prevalence of current Li technology), it should be understood that various embodiments may be applicable to other secondary and primary batteries (such as Na-ion, Mg-ion, K-ion, Ca-ion, Al-ion and other metal-ion batteries, anion-ion (e.g., F-ion) batteries, dual-ion batteries, alkaline batteries, acid batteries, solid-state batteries, etc.), as well as electrochemical capacitors (including double-layer capacitors and so-called supercapacitors) with various electrolytes and various hybrid devices (e.g., where one electrode is battery-like and the other is supercapacitor-like).
[0038] Although the following description may describe specific examples of material formulations for several specific types of cathode or anode materials, it should be understood that various aspects may be applicable to a variety of other electrode materials.
[0039] Although the following description may describe particular embodiments in the context of preparing porous electrodes with particular polymer or copolymer binders, it should be understood that various aspects may be applicable to porous electrodes with other types of binders or mixtures of binders, or to porous electrodes with no binder at all.
[0040] Although the following description may describe particular embodiments in the context of preparing porous electrodes containing particular conductive additives, it should be understood that various aspects may be applicable to porous electrodes containing other types of additives or mixtures of additives, or to porous electrodes that do not contain any conductive additives at all.
[0041] Any numerical ranges recited herein with respect to any embodiment of the invention are intended not only to define the upper and lower limits of the relevant numerical range, but also as an implicit disclosure of each separate value within that range in units or increments consistent with the level of precision by which the limits are characterized. For example, a numerical distance range of 50 μm to 1200 μm (i.e., a level of precision of 1 unit or increment) encompasses the set (in μm) [50, 51, 52, 53, . . . , 1199, 1200] as if the intervening numbers 51 to 1199 in 1 unit or increment were explicitly disclosed. In another example, a numerical percentage range (i.e., a level of precision in hundredths or increments) of 0.01% to 10.00% encompasses (as a %) the set [0.01, 0.02, 0.03, . . . , 9.99, 10.00] as if the intervening numbers 0.02 to 9.99 in hundredths or increments were explicitly disclosed. Accordingly, any intervening numbers encompassed by any disclosed numerical range are intended to be construed as if those intervening numbers were explicitly disclosed, whereby any such intervening numbers may constitute upper and / or lower limits of sub-ranges within that broader range. Accordingly, each sub-range (e.g., each range that includes at least one intervening number from the broader range as an upper and / or lower limit) is intended to be construed as implicitly disclosed by the explicit disclosure of the broader range.
[0042] Hereinafter, reference will be made to battery electrode compositions containing particles at various stages. For example, after their manufacture, electrode particles (e.g., anode active material particles, cathode active material particles, etc.) can be configured as a dry powder in which the individual particles are free to move. These dry powder particles are then mixed with a solvent, binder, and / or other materials to form a slurry (e.g., in a liquid or substantially liquid phase). The slurry can then be cast (e.g., onto a current collector) to form an electrode and then dried. Once cast into an electrode, the electrode particles are bound together via the binder and are no longer free to move, although the particles may still move somewhat during battery operation due to, for example, swelling of the active material.
[0043] 1 illustrates an exemplary metal-ion (e.g., Li-ion) battery 100 to which the components / ingredients, materials, methods, and other techniques described herein, or combinations thereof, may be applied according to various embodiments. While a cylindrical battery is shown here for illustrative purposes, other types of configurations, including prismatic, coin-shaped, or pouch (laminated) batteries, may also be used as desired. The exemplary battery 100 includes a negative anode 102, a positive cathode 103, a separator 104 interposed between the anode 102 and the cathode 103, an electrolyte (not shown) immersing the separator 104, a battery housing 105, and a sealing member 106 sealing the battery housing 105.
[0044] Conventional electrodes utilized in Li-ion batteries can be produced by (i) forming a slurry containing active material, conductive additives, a binder solution, and optionally surfactants or other functional additives, (ii) casting the slurry onto a metal foil (e.g., Cu foil for most Li-ion battery anodes and Al foil for most Li-ion battery cathodes), (iii) drying the cast electrode to completely evaporate the solvent, and (iv) calendaring (densifying) the dried electrode by uniform rolling.
[0045] Cylindrical and other batteries can be produced by the following steps: (i) assembling / stacking (winding into a so-called jelly roll) the anode / separator / cathode / separator sandwich; (ii) inserting the stack (i.e., the jelly roll) into a battery housing (casing); (iii) filling the pores of the electrodes and separator (and the remaining areas of the casing) with electrolyte, often under vacuum; (iv) pre-sealing the battery cells (often under vacuum); (v) subjecting the battery to a so-called "formation" cycle in which it is slowly charged and discharged (e.g., one or more times); and (vi) removing the forming gases, sealing the cell, and shipping it to the customer.
[0046] Both liquid and solid electrolytes can be used in the designs herein. An exemplary electrolyte for this type of Li-based battery can consist of a single Li salt (such as LiPF6 for Li-ion batteries) in a mixture of organic solvents (such as a mixture of carbonates). Other suitable organic solvents include nitriles, esters, sulfones, sulfoxides, phosphorus-based solvents, silicon-based solvents, ethers, and the like. In some designs, such solvents can be modified (e.g., sulfonated or fluorinated). In some designs, the electrolyte can include an ionic liquid (neutral ionic liquid in some designs, acidic and basic ionic liquids in others). In some designs, the electrolyte can include a mixture of various salts (e.g., a mixture of multiple Li salts or a mixture of Li and non-Li salts for Li and Li-ion secondary batteries).
[0047] The most common salt used in Li-ion battery electrolytes is, for example, LiPF6, while less common salts include lithium tetrafluoroborate (LiBF4), lithium perchlorate (LiClO4), lithium bis(oxalato)borate (LiB(C2O4)2), lithium difluoro(oxalato)borate (LiBF2(C2O4)), and various lithium imides (SO2FN - (Li + )SO2F, CF3SO2N - (Li + )SO2CF3, CF3CF2SO2N - (Li + )SO2CF3, CF3CF2SO2N - (Li + )SO2CF2CF3, CF3SO2N - (Li + )SO2CF2OCF3, CF3OCF2SO2N - (Li + )SO2CF2OCF3, C6F5SO2N - (Li + )SO2CF3, C6F5SO2N - (Li + )SO2C6F5 or CF3SO2N - (Li +)SO2PhCF3, etc. Electrolytes for Na-ion, Mg-ion, K-ion, Ca-ion, and Al-ion batteries are often more exotic because these batteries are in earlier stages of development. In some designs, such electrolytes may contain different salts and solvents (in some cases, ionic liquids may replace organic solvents for certain applications).
[0048] Certain conventional cathode materials utilized in Li-ion batteries are of the intercalation type. In these cathodes, metal ions intercalate and occupy interstitial sites of such materials during charging or discharging of the battery. These cathodes use intercalation-type active materials as the exclusive active material type (i.e., non-conventional active materials) and experience very little volume change during operation (cycling). These cathodes also have high densities (e.g., about 3.8-6 g / cm). 3 ) may be used. Illustrative examples of such intercalation cathodes include, but are not limited to, lithium cobalt oxide (LCO), lithium nickel cobalt aluminum oxide (NCA), lithium nickel manganese cobalt oxide (NMC), lithium nickel manganese cobalt aluminum oxide (NMCA), lithium manganese oxide (LMO), lithium nickel oxide (LNO), lithium metal (e.g., iron (Fe or "F") or manganese (Mn or "M") or mixed) phosphate esters (e.g., LMPs such as lithium iron phosphate (LFP) or lithium manganese iron phosphate (LMFP)), lithium metal silicate (Li2MSiO4), and various other intercalation cathode materials, including those with surface coatings or that exhibit gradient compositions within individual particles, and various mixtures thereof, among others. Polyvinylidene fluoride or polyvinylidene difluoride (PVDF) are the most common binders used in these electrodes. Carbon black and carbon nanotubes are the most common conductive additives used.
[0049] Conversion-type (displacement-type, chemical conversion-type, true conversion-type, etc.) cathode materials for Li-ion or Li secondary batteries can provide higher energy densities, higher specific energies, or higher specific or volumetric capacities compared to intercalation-type cathode materials. For example, fluorine-based cathodes can provide capacities in excess of about 300 mAh / g in some cases (about 1200 mAh / cm at the electrode level). 3 For example, in the absence of Li, FeF3 provides a theoretical specific capacity of 712 mAh / g, FeF2 provides a theoretical specific capacity of 571 mAh / g, MnF3 provides a theoretical specific capacity of 719 mAh / g, CuF2 provides a theoretical specific capacity of 528 mAh / g, NiF2 provides a theoretical specific capacity of 554 mAh / g, PbF2 provides a theoretical specific capacity of 219 mAh / g, and BiF3 provides a theoretical specific capacity of 302 mAh / g. The theoretical specific capacity is 100 mAh / g, BiF5 provides a theoretical specific capacity of 441 mAh / g, SnF2 provides a theoretical specific capacity of 342 mAh / g, SnF4 provides a theoretical specific capacity of 551 mAh / g, SbF3 provides a theoretical specific capacity of 450 mAh / g, SbF5 provides a theoretical specific capacity of 618 mAh / g, CdF2 provides a theoretical specific capacity of 356 mAh / g, and ZnF2 provides a theoretical specific capacity of 519 mAh / g. Mixtures of fluorides (e.g., in the form of alloys) can provide theoretical capacities estimated according to the rule of mixtures. In some designs, the use of mixed metal fluorides can be advantageous (e.g., providing higher rates, lower resistance, higher practical capacity, or longer stability). In the fully lithiated state, the metal fluorides transform into composites containing a mixture of metal and LiF clusters (or nanoparticles). Examples of globally reversible reactions for conversion metal fluoride cathodes may include 2Li + CuF2 ⇔ 2LiF + Cu for CuF2-based cathodes, or 3Li + FeF3 ⇔ 3LiF + Fe for FeF3-based cathodes. It should be appreciated that metal fluoride-based cathodes can be prepared in either a Li-free, partially lithiated, or fully lithiated state.
[0050] Other examples of promising conversion-type Li-ion battery cathode (or possibly anode) materials are sulfur (S) (in the Li-free state) or lithium sulfide (LiS) (in the fully lithiated state). To reduce dissolution of the active material during cycling, improve electrical conductivity, or in some designs improve the mechanical stability of the S / LiS electrode, porous S, LiS, porous SC (nano)composite, LiS-C (nano)composite, LiS-metal oxide (nano)composite, LiS-C-metal oxide (nano)composite, LiS-C-metal sulfide (nano)composite, LiS-metal sulfide (nano)composite, LiS-C-mixed metal oxide (nano)composite, LiS-C-mixed metal sulfide (nano)composite, porous S-polymer (nano)composite, or other composites or (nano)composites containing S, LiS, or both, can be advantageously utilized. In some designs, the (nano)composite may advantageously include conductive carbon. In some designs, the (nano)composite may advantageously include a metal oxide or mixed metal oxide. In some designs, the (nano)composite may advantageously include a metal sulfide or mixed metal sulfide. In some examples, the mixed metal oxide or mixed metal sulfide may include lithium metal. In some examples, the mixed metal oxide may include titanium metal. In some examples, the lithium-containing metal oxide or metal sulfide may exhibit a layered structure. In some examples, the metal oxide or mixed metal oxide or metal sulfide or mixed metal sulfide may advantageously be ionically and electrically conductive. In some examples, various other intercalation-type active materials may be utilized instead of or in addition to the metal oxide or metal sulfide. In some designs, such intercalation-type active materials may be utilized in place of or in addition to the metal oxide or metal sulfide. In some designs, such intercalation-type active materials may be utilized in place of the charge storage amount of S or LiS (e.g., Li / Li + The charge storage capacity (e.g., Li insertion / extraction capacity) is within a potential range of approximately 1.5 to 3.8 V vs.
[0051] Unfortunately, many conversion-type electrodes used in Li-ion batteries suffer from performance limitations. The formation of (nano)composites can at least partially overcome such limitations. For example, (nano)composites in some designs can provide reduced voltage hysteresis, improved capacity utilization, improved rate capability, improved mechanical and possibly electrochemical stability, reduced volume change, and / or other positive attributes. Examples of such composite cathode materials include, but are not limited to, LiF-Cu-Fe-C nanocomposites, LiF-Ni-Fe-C nanocomposites, LiF-Mn-Fe-C nanocomposites, LiF-Ni-Mn-Fe-C nanocomposites, LiF-Cu-CuO-C nanocomposites, LiF-Ni-NiO-C nanocomposites, LiF-Cu-Fe-CuO-C nanocomposites, LiF-Ni-Fe-NiO-C nanocomposites, LiF-Cu-Fe -CuO-Fe2O3-C nanocomposite, LiF-Ni-Fe-NiO-Fe2O3-C nanocomposite, FeF2-C nanocomposite, FeF2-Fe2O3-C nanocomposite, FeF3-C nanocomposite, FeF3-Fe2O3-C nanocomposite, CuF2-C nanocomposite, CuO-CuF2-C nanocomposite, LiF-Cu-C nanocomposite, NiF2-C nanocomposite, NiO-NiF2-C nanocomposite, LiF-Ni-C nanocomposite LiF-Cu-C-polymer nanocomposite, LiF-Fe-C-polymer nanocomposite, LiF-Ni-C-polymer nanocomposite, LiF-Cu-CuO-C-polymer nanocomposite, LiF-Fe-Fe2O3-C-polymer nanocomposite, LiF-Fe-metal-polymer nanocomposite, LiF-Fe-metal 1-metal 2-polymer nanocomposite, and LiF, FeF3, FeF2, MnF3, CuF2, NiF2, PbF2 , BiF3, BiF5, CoF2, SnF2, SnF4, SbF3, SbF5, CdF2 or ZnF2 or other metal fluorides or oxyfluorides or alloys or mixtures thereof, or a number of other porous nanocomposites comprising Fe, Mn, Cu, Ni, Pb, Bi, Co, Sn, Sb, Cd, Co, Zn or other metals or metal alloys, and optionally metal oxides and alloys or mixtures thereof. In some cases, metal sulfides or mixed metal sulfides may be used instead of or in addition to metal oxides in the above (nano)composites.In some cases, metal fluoride nanoparticles can be infiltrated into the pores of porous carbon (e.g., the pores of activated carbon particles) to form metal fluoride-C nanocomposites. In some cases, the composite particles can also include a metal oxide (such as a mixed metal oxide, metal oxyfluoride, or mixed metal oxyfluoride) or a metal sulfide (such as a mixed metal sulfide). In some cases, the mixed metal oxide or mixed metal sulfide can include lithium metal. In some cases, the lithium-containing metal oxide or metal sulfide can exhibit a layered structure. In some cases, the metal oxide or mixed metal oxide or metal sulfide or mixed metal sulfide can be advantageously ionically and electrically conductive.
[0052] In some examples, various intercalation-type active materials may be utilized in place of or in addition to metal oxides, metal sulfides, metal fluorides, or oxyfluorides in Li-ion battery cathodes. In some designs, such intercalation-type active materials may be utilized in the same potential range (e.g., when present in the same cathode) or nearby potential ranges (e.g., Li / Li) as metal fluorides, metal oxyfluorides, metal sulfides, or other conversion-type active materials. + In some examples, the metal oxide may encapsulate a metal fluoride, oxyfluoride, or sulfide (or other suitable conversion cathode) (e.g., to reduce or prevent metal corrosion and dissolution during cycling), advantageously preventing (or significantly reducing) direct contact of the metal fluoride (or oxyfluoride or other conversion active material) with a liquid, gel, or polymer electrolyte. In some examples, the nanocomposite particles may comprise a carbon shell or carbon coating. In some designs, such a coating may increase the electrical conductivity of the particle and also prevent (or significantly reduce) undesired direct contact of the metal fluoride (or oxyfluoride or other conversion active material) with a liquid electrolyte. In some designs, the fluoride-containing (nano)composite particles may be used in unlithiated, fully lithiated, and partially lithiated states.
[0053] Some conventional anode materials utilized in Li-ion batteries are also of the intercalation type. The most common anode materials in conventional intercalation type Li-ion batteries are carbons, such as synthetic or natural graphite, soft or hard carbons, or various mixtures thereof. PVDF, carboxymethyl cellulose (CMC), alginic acid and its various salts, and polyacrylic acid (PAA) and its various salts are some of the most common binders used in these electrodes, although other binders may also be used as appropriate. Carbon black and carbon nanotubes are some of the most common conductive additives used in these electrodes.
[0054] Conversion-type (including alloyed, displacement, and chemically converted) anode materials for use in Li-ion batteries offer higher gravimetric and volumetric capacities than intercalation-type anodes. For example, silicon (Si) offers approximately 10 times higher gravimetric capacity and approximately 3 times higher volumetric capacity than intercalation-type graphite (or graphitic) anodes. However, Si undergoes significant volume expansion (as much as approximately 300% by volume) during Li insertion, which can lead to thickness changes and mechanical failure of Si-containing anodes in some designs. Furthermore, Si (and any Li-Si alloy compounds that may form during Si lithiation) suffer from relatively low electrical and ionic (Li-ion) conductivity. The electrical and ionic conductivities of Si are lower than those of graphite. In some design examples, the formation of (nano)composite Si-containing (nano)particles of various shapes and sizes (including, but not limited to, various Si-carbon composites, Si-metal composites, Si-polymer composites, Si-metal-polymer composites, Si-carbon-polymer composites, Si-metal-carbon-polymer composites, Si-ceramic composites, or other types of porous composites containing nanostructured Si or nanostructured or nanosized Si particles of various shapes and morphologies) and combinations thereof can reduce volume changes during Li-ion insertion and extraction and can result in better cycling stability in secondary (rechargeable) Li-ion cells. In addition to Si-containing nanocomposite anodes, other examples of such nanocomposite anodes containing alloyed active materials include, but are not limited to, those containing germanium, antimony, aluminum, magnesium, zinc, gallium, arsenic, phosphorus, silver, cadmium, indium, tin, lead, bismuth, various alloys thereof, etc.In addition to (nano)composite anodes containing alloyed active materials, other interesting types of high-capacity (nano)composite anodes can include metal oxides (including silicon oxides, lithium oxides, other metal oxides and suboxides, etc.), metal nitrides (including silicon nitride and other metal nitrides and subnitrides), metal phosphides (including lithium phosphide and other metal phosphides and subphosphides), metal hydrides (including metal hydrides), etc., as well as various mixtures, alloys, and combinations thereof. Such material compositions may also be doped with other elements to enhance their electrochemical performance or to achieve other benefits.
[0055] As used herein, a "blended" anode for a Li-ion battery refers to an anode comprising a blend of active (Li-ion storage) materials, where at least one component of the blend is an intercalation-type (e.g., carbonaceous) active material (such as, inter alia, natural or synthetic graphite, soft or hard carbon, or various mixtures thereof) and at least one other component of the blend is a conversion-type (including alloyed-type) active material.
[0056] In some designs, at least one intercalation-type component of the blend that includes a (eg, carbonaceous) active material contributes between about 20% and about 98% by weight of the total active material in the blend anode.
[0057] In some designs, at least one conversion-type component of the blend that includes a (eg, carbonaceous) active material contributes between about 2% and about 80% by weight of the total active material in the blend anode.
[0058] In some applications, it can be highly advantageous to reduce the relative fraction of inactive materials (e.g., current collector foil, separator, etc.) to produce a high areal capacity loading of the electrode, advantageously between about 4.0 and about 20.0 mAh / cm. 2 In some designs, the capacity is approximately 4.0 to 7.0 mAh / cm 2 , and in some designs, approximately 7.0 to 10.0 mAh / cm2 In some designs, the capacity is approximately 10.0 to 20.0 mAh / cm 2 However, when a purely intercalation-type (e.g., carbonaceous) anode (graphite or soft or hard carbon) is used in the design of a Li-ion battery with such high areal loadings, the typical thickness of the anode becomes so large (e.g., about 70 to 350 microns) that the battery charge rate characteristics at moderate temperatures (for a given application) are reduced to unnecessarily low values (e.g., about 40 minutes to about 2000 minutes or more for charging from about 0 to about 80% state of charge (SoC) at about room temperature). One or more embodiments of the present disclosure may be used to design a Li-ion battery with a moderate areal loading (e.g., about 1.0 to about 4.0 mAh / cm). 2 ) and most importantly, high areal loading (e.g., about 4.0 to about 20.0 mAh / cm 2), various routes to achieving substantially lower electrode thicknesses and substantially faster charge times. In some design examples, some of these routes may advantageously involve the use of so-called blend anodes, which include (i) at least one type of intercalation-type (e.g., carbonaceous) anode material particles (e.g., natural or synthetic graphite, soft or hard carbon, or various mixtures thereof) and (ii) at least one type of conversion-type (including alloyed-type) anode material particles (e.g., those containing Si, Sn, Sb, Ge, Al, Mg, Zn, Ga, P, Ag, Cd, In, Pb, Bi, or various mixtures and alloys thereof, as well as those containing other metal-containing compositions, including oxides, nitrides, hydrides, phosphides, and compositions with various dopings) that exhibit substantially higher volumetric capacity than corresponding intercalation-type anode active materials. As previously mentioned, Si-containing conversion-type (including alloyed-type) anode particles are particularly promising due to their higher specific capacity, abundance of Si, and lower Si cost. In some designs, it may be preferred for the converted (including alloyed) active anode material particles of the blend anode to contain about 50 to about 100 atomic % Si as a fraction of all (non-carbon) metals and metalloids in their composition. In some designs, it may be preferred for the converted (including alloyed) active anode material particles of the blend anode to have a capacity of about 700 mAh / g to about 2800 mAh / g (about 1400-1500 mAh / g to about 2200 mAh / g in some designs, about 700 mAh / g to about 1200 mAh / g in some designs, about 1200 mAh / g to about 1400 mAh / g in other designs, and about 1400 mAh / g to about 1500 mAh / g in other designs). It may be preferable for the battery to exhibit a specific reversible capacity in the range of about 500 mAh / g in other designs, about 1500 mAh / g to about 1600 mAh / g in other designs, about 1600 mAh / g to about 1700 mAh / g in other designs, about 1700 mAh / g to about 1800 mAh / g in other designs, about 1800 mAh / g to about 2200 mAh / g in other designs, and about 2200 mAh / g to about 2800 mAh / g in other designs.In some designs, when a range of conversion-type active particles with different capacities are used in a blended anode design, it may be advantageous for their weight-average specific reversible capacity to remain in the range of about 700 mAh / g to about 2800 mAh / g. A weight-average specific capacity that is too high (e.g., greater than about 50-60% of the specific capacity) may induce undesirably rapid degradation in cells having blended compositions containing a high fraction of conversion-type active material, especially at high temperatures. In some designs, it may be preferable for the conversion-type (including alloyed-type) active anode material particles in the blended anode to exhibit a first-cycle coulombic efficiency in the range of about 80% to about 98% (about 80% to about 85% in some designs, about 85% to about 90% in other designs, about 90% to about 93% in other designs, and about 93% to about 98% in other designs). In some designs, when various conversion-type active particles with different first-cycle coulombic efficiencies are used in a blended anode design, it may be advantageous for the weight-average first-cycle coulombic efficiencies to remain in the range of about 80% to about 98%. In some designs, it may be preferable for the conversion-type (including alloyed-type) anode active material particles to contain about 20 to about 90 wt.% Si, as a fraction of all elements in such particles. In some designs, it may be preferable for the (e.g., blended) anode to contain about 2 wt.% to about 74 wt.% Si, as a fraction of the total weight of all anode active materials (e.g., in the blend of active materials) including all components (including inactive components) of graphite, carbon, and Si-containing active conversion-type (including alloyed-type) anode active particles (e.g., Si, Ge, Sn, Sb, Zn, H, C, S, P, O, N, Ca, Mg, Al, Ag, In, Bi, Pb, Fe, V, Sr, Ba, etc.).
[0059] In some designs, instead of pure conversion-type anode particles in the blend, intercalation-type (e.g., carbonaceous) particles (e.g., graphite or graphitic) having a conversion-type (e.g., Si-containing) material physically mixed with or attached to it as a coating or particle on its surface or within its pores may be utilized, resulting in composite particles that exhibit both intercalation and conversion electrochemical behavior. In this case, depending on the relative weight fractions of the intercalation-type and conversion-type components of the composite and their corresponding capacities, the (reversible) specific capacity of the composite particles may range from about 400 mAh / g to about 1400-1800 mAh / g (although higher values up to about 2800 mAh / g may be achieved in some designs). In some designs, such mixed intercalation / conversion-type composite particles may exhibit first cycle coulombic efficiencies preferably in the range of about 80% to about 98% (more preferably in some designs, about 88% to about 98%). Such composite particles may also be mixed with intercalation-type (eg, carbonaceous, such as graphite or graphitic) particles to form a blend anode.
[0060] The relative contributions of (i) intercalation-type carbonaceous active materials (e.g., graphite-containing) and (ii) conversion-type (including alloyed) active materials (e.g., silicon-containing) to the total volumetric capacity (capacity per unit volume) and total specific (gravimetric) capacity (capacity per unit mass) of the blend anode can vary depending on the requirements of the particular battery (e.g., Li-ion) application and the properties of the corresponding active materials. For example, some conversion-type (e.g., silicon-containing) anode materials may suffer from higher cost, larger volume change during the first cycle, larger volume change during subsequent cycles, larger first-cycle losses, faster degradation, poorer performance at high temperatures, or other poorer properties than corresponding intercalation-type active materials (e.g., graphite-containing). Some such conversion-type (e.g., silicon-containing) anode materials may similarly require undesirable components of the electrolyte in battery designs to prevent gassing during high-temperature storage (e.g., battery storage at about 60-80°C at about 70% to about 100% state-of-charge SOC) or high-temperature operation (e.g., about 40-80°C). In this and other cases, for example, some designs may be advantageous to use a smaller fraction of conversion-type active material in the blend anode. Other designs may be advantageous to use a higher fraction of conversion-type active material in the blend anode, for example, to maximize their volumetric and gravimetric capacity. However, in most cases, it may be advantageous for the intercalation-type carbonaceous active material (e.g., graphite) to comprise about 50 wt. % to about 97 wt. % of the total weight of active materials in the blend anode in a discharged, delithiated, and often substantially Li-free state (such that the conversion-type active material comprises about 3 wt. % to about 50 wt. %, and in some designs, about 5 wt. % to about 25 wt. %). In some designs, it may be advantageous for the intercalation-type (e.g., carbonaceous) active material (e.g., graphite) to contribute about 20 vol. % to about 90 vol. % of the total volume of the blend anode (in a fully expanded, fully charged, and fully lithiated state). In some designs, the intercalation-type carbonaceous active material (e.g., graphite) to contribute about 1 ... 2It may be advantageous for the intercalation-type carbonaceous active material (e.g., graphite) to contribute about 10% to about 85% of the total areal capacity loading of the blend anode (in units of 0.01%), thereby allowing the conversion-type (including alloyed-type) active material (e.g., silicon-containing) to contribute in the range of about 15% to about 90% of the total areal capacity loading of the blend anode. In some design examples, it may be advantageous for the intercalation-type carbonaceous active material (e.g., graphite) to contribute about 10% to about 85% of the total reversible capacity of the blend anode (in the discharged, delithiated, and often substantially Li-free state). Thus, in such design examples, it may be advantageous for the conversion-type (including alloyed-type) active material (e.g., silicon-containing) to contribute about 15% to about 90% of the total reversible capacity of the blend anode (in the fully discharged, delithiated, and often substantially Li-free state).
[0061] In some designs, an intercalated (e.g., carbonaceous) active material (e.g., graphite, such as natural or synthetic graphite or graphitic materials, or combinations thereof, among others) may be added to a blend anode not because of its better electrochemical stability relative to a converted-type active material, but because of its higher deformability (e.g., during densification or calendering), better thermal properties, reduced heat dissipation during thermal runaway, or other attributes that enhance the performance of a pure converted (including alloyed) active material (e.g., silicon-containing). In these cases, even a relatively small fraction (e.g., about 30% or less of areal volume, or about 50% or less by weight) of the carbonaceous active material may be advantageously added in constructing a blend anode in some designs.
[0062] A wide range of conversion-type active materials can be utilized in blend anodes. However, the authors have identified that a particular size distribution, density range, composition, surface properties, capacity, and range of volume change during cycling of converted (including alloyed) anode material particles (or composite particles containing conversion-type active materials) may be particularly advantageous for application in Li-ion batteries with blend anodes.
[0063] In particular, high capacity conversion-type (including alloyed-type) anode powders (or powder mixtures that may include composite particles containing conversion-type active materials) are preferred, which (i) exhibit a moderately high average volume change during the first cycle (e.g., between about 8 and 180 volume %, and in some cases between about 8 and 220 volume %) and a moderate average volume change during subsequent charge / discharge cycles (e.g., between about 4 and 60 volume %, and in some cases between about 4 and 80 volume %), (ii) exhibit an average size (e.g., average diameter) in the range of about 0.2 to about 40 microns (more preferably about 0.3 to about 20 microns, and in some designs preferably about 1 to about 10 microns, and in some designs preferably about 2 to about 6 microns), and (iii) exhibit a mean size (e.g., average diameter) in the range of about 0.1 to about 100.0 microns. 2 / g (in some designs, more preferably about 0.25 to about 25.0 m 2 / g, and in some design examples, approximately 0.5 to approximately 10 m 2 / g, and in some design examples, approximately 1 to 5 m 2 Anode powders exhibiting an average specific surface area in the range of 0.05 to 0.15 μm / g may be particularly promising for applications in blend anodes in terms of manufacturability and performance characteristics. In some designs, those conversion-type active particles (or composite particles containing conversion-type active materials) with a roughly spherical (or ellipsoidal) shape may be even more promising for optimizing the rate performance and volumetric capacity of the blend anodes.
[0064] Furthermore, for many metal-ion (e.g., Li-ion) battery cell designs, it can be advantageous for the blend anode to have a first cycle loss in the range of about 1% to about 16% (about 1% to about 4% in some designs, about 4% to about 6% in some designs, about 6% to about 8% in some designs, about 8% to about 10% in some designs, and about 10% to about 16% in some designs). A smaller first cycle loss in the Li-ion battery anode is particularly advantageous for some designs where the Li-ion battery cathode in the whole cell exhibits a smaller irreversible Li capacity (e.g., about 0% to about 15%, about 2% to about 10% in some designs). Generally, the smaller the irreversible capacity loss in the cathode, the smaller the preferred first cycle loss in the blend anode. Thus, depending on the first cycle loss of the intercalation (e.g., carbonaceous) material (e.g., graphite, carbon, or graphite blends, which in some designs may experience an irreversible Li capacity loss in the first cycle that may range from about 2% to about 10%) and the fraction of the specific capacity contributed by the intercalation (e.g., carbonaceous) material (e.g., about 10% to about 80% of the total specific capacity of the blend anode), the ideal first cycle loss for the conversion-type material will be determined by the cell design (e.g., negative to positive electrode loading ratio, cathode properties including irreversible Li capacity, electrolyte composition, etc.).
[0065] Furthermore, as previously mentioned, in some applications, the blend anode may provide a moderate electrode capacity loading (e.g., about 1-4 mAh / cm 2 between 0.25 and 1.5 mAh / cm ) or preferably high electrode capacity loading (e.g., between 0.25 and 1.5 mAh / cm ) 2It can be particularly important to achieve desired performance characteristics in Li-ion batteries (e.g., near-ideal first cycle loss, sufficiently high charge rates, sufficiently stable cycling performance over the desired temperature range, low gassing during high temperature storage in the state of charge or high temperature cycling, low volume change during cycling, low swelling at end of life, etc.) when produced at temperatures between 1000 and 2000°C. Achieving such a combination of properties in blend anodes can be challenging at these loads, and is not trivial, especially for aqueous (or water-compatible) slurry processing. For example, conversion-type anode materials traditionally used for blend anodes can suffer from high first cycle losses (e.g., in the range of about 20 to about 40%), irreversible growth of the contact surface area with the electrolyte, instability of the solid electrolyte interface (SEI) layer and the resulting cycling Li-ion loss, faster degradation, undesirably large volume changes during cycling, undesirably large swelling at end-of-life, and other undesirable properties, which limit their suitable weight fraction (relative to the total weight of the active materials in the blend anode) to about 2 to 5 wt % (up to 10 wt % in some special designs) and their specific capacity contribution to about 5 to 40%, often prohibiting their use in pouch cells (limiting their application to hard-case prismatic and cylindrical cells) or about 3 to 6.5 mAh / cm. 2One or more embodiments of the present disclosure are directed to (at least partially) overcoming at least some (or all) of the limitations of such blend anodes, achieving performance beyond that known or exhibited by the conventional current state of the art, achieving one, two, or more of the following characteristics: (i) longer cycle life (for equivalent or greater weight fractions of conventional active materials in the blend anode), (ii) higher weight percent conversion active material (e.g., in the range of about 5-50 wt % of the total capacity in the blend anode and / or their corresponding specific capacity contributions, up to about 10-80%, for equivalent or greater cycle life), (iii) less end-of-life cell swelling (for equivalent or greater weight fractions of conversion active materials or equivalent or greater specific capacity contributions), and (iv) higher areal capacity loading (e.g., about 4-20 mAh / cm) for equivalent or greater charge rates or cycle life. 2 ), (v) ability to be used in pouch (soft case) cells, (vi) lower first cycle loss (for an equivalent or higher weight fraction of converted active material), (vii) higher specific capacity (for the same cycle life), (viii) less gassing during high temperature (e.g., about 60-80°C) storage at about 80-100% SOC (for an equivalent or higher weight fraction of converted active material or for an equivalent or higher specific capacity contribution of converted anode material) in Li-ion batteries.
[0066] High capacity conversion type (including alloyed type) anode powders of different architectures can be advantageously used in blended metal ion (e.g., Li ion) battery anode designs according to one or more embodiments of the present disclosure.
[0067] In some design examples, the high-capacity conversion (including alloyed) anode powder can include a porous composite containing a plurality of aggregated nanocomposites. Each nanocomposite comprises (i) (i, a) dendritic particles comprising a three-dimensionally randomly arranged assembly of nanoparticles of a non-carbon Group 4A element (e.g., Si, Sn) or other metal that forms an electrochemical alloy with Li or a mixture thereof, or (i, b) dendritic particles comprising a three-dimensionally randomly arranged assembly of nanoparticles of carbon (of various shapes, including, but not limited to, nanoflakes, nanofibers, elongated, ellipsoidal, or roughly spherical nanoparticles) or a conductive polymer modified with nanoparticles of a non-carbon Group 4A element (e.g., Si, Sn) or other metal that forms an electrochemical alloy with Li, and (ii) a coating of an electrically conductive material deposited on the surface of the dendritic particles. Each nanocomposite has at least a portion of the dendritic particles electrically connected to at least a portion of the dendritic particles of adjacent nanocomposites in the plurality of aggregated nanocomposites. In some designs, the porous composite may further comprise (iii) a Li-ion permeable layer disposed on at least a portion of the surface of the aggregate nanocomposite, the Li-ion permeable layer comprising a total pore volume within the porous composite ranging from about 0.5 to about 3 times the volume occupied by the non-carbon Group 4A elements in the porous composite. In some designs, the electrically conductive material coating or Li-ion permeable layer may comprise carbon or a polymer. In some designs, a significant portion (e.g., about 50 to 100%, preferably about 90 to about 100%) of the pore volume within the porous composite is not accessible by the electrolyte solvent in the assembled cell. In some designs, the total volume fraction of all pores in the porous composite can range from about 10% to about 70% by volume (e.g., from about 10% to about 20% by volume in some designs, from about 20% to about 30% by volume in other designs, from about 30% to about 40% by volume in other designs, from about 40% to about 50% by volume in other designs, from about 50% to about 60% by volume in other designs, and from about 60% to about 70% by volume in other designs). In some designs, the total volume of all pores (including closed and open pores) in the porous composite can range from about 0.07 cm 3 / g to approximately 1.3 cm 3 / g (e.g., approximately 0.07 cm in some designs) 3 / g to approximately 0.1 cm 3 / g, and in other designs, approximately 0.1 cm 3 / g to approximately 0.2 cm 3 / g, and in other designs, approximately 0.2 cm 3 / g to approximately 0.3 cm 3 / g, and in other designs, approximately 0.3 cm 3 / g to approximately 0.4 cm 3 / g, and in other designs, approximately 0.4 cm 3 / g to about 0.5 cm 3 / g, and in other designs, approximately 0.5 cm 3 / g to approximately 0.6 cm 3 / g, and in other designs, approximately 0.6 cm 3 / g to approximately 0.7 cm 3 / g, and in other designs, approximately 0.7 cm 3 / g to about 0.8 cm 3 / g, and in other designs, approximately 0.8 cm 3 / g to approximately 0.9 cm 3 / g, and in other designs, approximately 0.9 cm 3 / g to approximately 1.0 cm 3 / g, and in other designs, approximately 1.0 cm 3 / g to approximately 1.1 cm 3 / g, and in other designs, approximately 1.1 cm 3 / g to about 1.2 cm 3 / g, and in other designs, approximately 1.1 cm 3 / g to approximately 1.3 cm 3 / g). Both too large and too small pore volumes can result in undesirably rapid degradation or poor performance of the anode (e.g., blend anode). In some designs, the average size of the nanoparticles (of non-carbon Group 4A elements, such as Si, or other metals electrochemically alloyed with Li or mixtures thereof) in the composite can range from about 2 nm to about 250 nm. In some designs, the average size of the pores in a porous composite comprising a plurality of aggregate nanocomposites and not accessible from the electrolyte solvent can range from about 0.5 nm to about 100 nm. In some designs, a portion of the pores (e.g., about 10% by volume or more) can be slit-shaped or nearly slit-shaped. In some designs, a porous composite comprising a plurality of aggregate nanocomposites can have from about 2 atomic % to about 82 atomic % sp 2 In some designs, a porous composite including a plurality of aggregate nanocomposites may include about 0.5 wt % to about 25 wt % of a polymer (which may be at least partially carbonized in some designs). In some designs, it may be preferable for the porous composite particles to include about 20 wt % to about 90 wt % of Si, as a fraction of the total weight of the particle. In some designs, it may be preferable for the porous composite particles to include about 10 atomic % to about 80 atomic % of Si, as a fraction of all elements within the particle. In some designs, it may be preferable for the porous composite particles to include about 2 atomic % to about 84 atomic % of C, as a fraction of all elements within the particle. In some designs, it may be preferable for the (nano)composite particles to include less than about 1-5 wt % of O, as a fraction of all elements within the particle. In some designs, it may be preferable for the (nano)composite particles to include less than about 2-10 wt % of nitrogen (N), as a fraction of all elements within the particle.
[0068] A number of suitable techniques can be used to determine the porosity or pore volume of a porous material or component. In many cases, the pore size distribution of the open pores is expressed as a function of the volume (e.g., g / cm). 3This technique can suggest the most appropriate technique for measuring the total pore volume (as measured by pore size). Pores are generally divided into three categories depending on pore size: (i) micropores (less than 2 nm), (ii) mesopores (2-50 nm), and (iii) macropores (greater than 50 nm). For example, by collecting a gas adsorption isotherm (e.g., a nitrogen or argon adsorption isotherm; it is very common to measure the adsorbed gas as a function of relative pressure at a constant temperature, such as 77 K), the volume of open micropores, open mesopores, and small open macropores (generally less than 100-200 nm). This technique generally estimates the specific average density of the adsorbed gas. In most cases, such density is approximately estimated as the density of the liquefied gas at the adsorption collection temperature. By measuring the total amount (e.g., mass) of gas (e.g., nitrogen gas) adsorbed into the pores at a pressure of about 0.99 atmospheres (e.g., at the gas liquefaction or boiling temperature at atmospheric pressure, e.g., 77 K for nitrogen), and knowing the gas density, the total volume of the pores can be calculated (the volume of the adsorbed gas is approximated as the volume of the pores). 3 The volume (measured in cm) can be approximated as the mass of adsorbed nitrogen divided by the density of liquid nitrogen, and 3 The specific pore volume (measured in cm / g) is the measured pore volume (cm 3 ) divided by the mass (g) of the porous adsorbent. To calculate porosity (%), it may be necessary to know the approximate density of the solid in the porous adsorbent. For example, if the porous material consists of porous carbon, the "true" density of the solid carbon (approximately 2 g / cm 3 For example, if the specific pore volume of a porous carbon powder is 0.5 cm 3 / g, the volume occupied by 1g of solid carbon is also 1 / 2 = 0.5cm 3Therefore, the porosity can be estimated as 50%. For solids with open pores larger than about 3-6 nm, so-called mercury porosimetry can be used. Mercury porosimetry generates high pressure and simultaneously measures both the pressure and the volume of mercury occupied by the porous material. Mercury porosimetry involves evacuating a porous sample (e.g., by drawing a vacuum) and then surrounding the sample with mercury. By measuring the volume occupied by the pores, the pore volume and porosity of a porous solid can similarly be measured. However, mercury generally cannot penetrate the smallest pores at reasonable pressures (typically 207 MPa (30,000 psia) or 414 MPa, depending on the mercury porosimetry system used), and this volume will be excluded from the measurement. Mercury porosimetry can be used for both powders and bulk objects (e.g., separators or electrodes) for which the total pore volume is to be calculated. Additionally, the total (open and closed) porosity of the bulk object (e.g., separator or electrode, both cm 3 The density, in units of / g or %, can also be determined by measuring the mass and external volume (e.g., thickness and area) of an object, given the weight fraction of each component and the approximate density of that component. The volume of closed pores can be estimated from measurements of the open pore volume (assuming the total pore volume is known or can be estimated based on density measurements). Density can be measured using liquid or gas (e.g., nitrogen or argon) pycnometry. Note that the volume of a material (e.g., powder or bulk) is determined by the volume displaced by that gas (also known as Archimedes' law). This technique may be most suitable for materials that do not contain open micropores (to avoid gas or liquid concentration in such small pores).
[0069] In some design examples, high-capacity conversion (including alloyed) anode powders may exhibit a core-shell composite architecture. This composite may include: (i) an active material (e.g., a non-carbon Group 4A element such as Si or other metals that constitute an electrochemical alloy with Li or mixtures thereof) configured to store and release Li ions during battery operation, whereby the storage and release of metal ions results in a substantial (e.g., about 40-400%) volume change of the active material; (ii) a folded core disposed in combination with the active material to accommodate the volume change (e.g., as used herein, a folded core refers to a core that undergoes permanent and irreversible plastic or inelastic deformation during one or more formation cycles to define a pore space that can accommodate active material expansion without undergoing deformation during subsequent cycles); and (iii) a shell at least partially encapsulating the active material and core (e.g., as used herein, "at least partially" means partially or completely), the shell being formed from a material that is substantially permeable to the Li ions stored and released by the active material. In some designs, the folded core is comprised of a porous material that accommodates volume changes through a plurality of open or closed pores (e.g., which may be defined in part by active material expansion during one or more formation cycles). In some designs, the porous material of the core is porous and electrically conductive (e.g., sp 2The core may comprise a porous material such as a carbon material (bonded to the core) or a conductive polymer. In some designs, the active material may be interspersed with the porous material of the core. In some designs, the core may be configured as a monolithic particle. In some designs, the porous material may comprise a porous substrate comprised of one or more curved, linear, or planar frameworks (which may be interpenetrated in some designs). In some designs, the average pore size of the porous material in the core may range from about 0.5 nm to about 50 nm (in some designs, from about 0.5 nm to about 10 nm). In some designs, a significant portion of the pores (e.g., 20-100% by volume) may advantageously be slit-shaped or nearly slit-shaped. In some designs, the folded core may further comprise one, two, or more voids (larger pores), which may be in direct contact with the active material. In some designs, the average pore size may range from about 10 nm to about 100 nm. In some designs, at least a significant portion (e.g., about 20-100% by volume) of the voids can be approximately spherical or elliptical in shape. In some designs, the total volume fraction of all pores (including voids) in the core-shell composite particle can range from about 10% to about 70% by volume (e.g., from about 10% to about 20% by volume in some designs, from about 20% to about 30% by volume in other designs, from about 30% to about 40% by volume in other designs, from about 40% to about 50% by volume in other designs, from about 50% to about 60% by volume in other designs, and from about 60% to about 70% by volume in other designs). In some designs, the total volume of all pores (including voids) in the core-shell composite particle can be about 0.07 cm 3 / g to approximately 1.3 cm 3 / g (e.g., approximately 0.07 cm in some designs) 3 / g to approximately 0.1 cm 3 / g, and in other designs, approximately 0.1 cm 3 / g to approximately 0.2 cm 3 / g, and in other designs, approximately 0.2 cm 3 / g to approximately 0.3 cm 3 / g, and in other designs, approximately 0.3 cm 3 / g to approximately 0.4 cm 3 / g, and in other designs, approximately 0.4 cm 3 / g to about 0.5 cm 3 / g, and in other designs, approximately 0.5 cm 3 / g to approximately 0.6 cm 3 / g, and in other designs, approximately 0.6 cm 3 / g to approximately 0.7 cm 3 / g, and in other designs, approximately 0.7 cm 3 / g to about 0.8 cm 3 / g, and in other designs, approximately 0.8 cm 3 / g to approximately 0.9 cm 3 / g, and in other designs, approximately 0.9 cm 3 / g to approximately 1.0 cm 3 / g, and in other designs, approximately 1.0 cm 3 / g to approximately 1.1 cm 3 / g, and in other designs, approximately 1.1 cm 3 / g to about 1.2 cm 3 / g, and in other designs, approximately 1.1 cm 3 / g to approximately 1.3 cm 3 / g). Both too large and too small a pore volume can result in undesirably rapid degradation or poor performance of the anode (such as a blend anode).
[0070] In some designs, the shell of a core-shell particle may comprise a protective coating that at least partially encapsulates the active material and core to prevent oxidation of the active material. In some designs, the shell may comprise a porous coating that at least partially encapsulates the active material and core, the porous coating having a plurality of open or closed pores to further accommodate volume changes. In some designs, at least a portion of such pores in the porous core material and / or porous coating may be filled with a filler material. In some designs, the filler material may include carbon. In some designs, at least a portion of the shell material may be deposited by chemical vapor deposition (CVD). In some designs, at least a portion of the shell material may be deposited by atomic layer deposition (ALD). In some designs, the shell may be a composite material comprising an inner layer and an outer layer, and may optionally comprise one or more intervening layers. In some designs, the inner layer is one of a protective coating layer or a porous coating layer, and the outer layer is the other of a protective coating layer or a porous coating layer. In some designs, at least a portion of the shell is a sp by CVD deposition. 2 In some designs, at least a portion of the shell may comprise a polymer layer (in some designs, a CVD-deposited polymer). In some designs, one or more of the core-shell composite particles may comprise from about 2 atomic % to about 82 atomic % sp as a fraction of all elements in the respective composite particle. 2It may contain bonded carbon. In some designs, the core-shell composite may contain about 0.5 wt % to about 25 wt % polymer (which may be at least partially carbonized in some designs). In some designs, it may be preferable for one or more of the core-shell composite particles to contain about 20 wt % to about 90 wt % Si as a fraction of the total weight of the particle. In some designs, it may be preferable for one or more of the core-shell composite particles to contain about 10 atomic % to about 70 atomic % Si as a fraction of all elements within the particle. In some designs, it may be preferable for one or more of the porous composite particles to contain about 2 atomic % to about 84 atomic % C as a fraction of all elements within the particle. In some designs, it may be preferable for one or more of the (nano)composite particles to contain less than about 1-5 wt % O as a fraction of all elements within the particle. In some designs, it may be preferable for one or more of the (nano)composite particles to contain less than about 2-10 wt % nitrogen (N) as a fraction of all elements within the particle.
[0071] In some designs, high-capacity conversion (including alloyed) anode powders may include (nano)composite particles that include (i) an active material (e.g., a non-carbon Group 4A element (such as Si) or another metal that forms an electrochemical alloy with Li) configured to store and release ions during battery operation, whereby the storage and release of ions results in a substantial change in the volume of the active material (e.g., about 40% by volume or more), and (ii) a porous, electrically conductive scaffold matrix in which the active material is disposed, the scaffold matrix providing structural support for the active material, electrically interconnecting the active material, and at least partially accommodating changes in volume of the active material. In some designs, the porous scaffold matrix may advantageously be a porous monolithic particle.
[0072] In some designs, each (nano)composite particle may further comprise a shell at least partially encapsulating the active material and the scaffold matrix, the shell being substantially permeable to Li-ions stored and released by the active material. In some designs, the shell may comprise a protective layer made of a material substantially impermeable to electrolyte solvent molecules. In some designs, the shell may also comprise an active material layer, the active material disposed within the scaffold matrix being composed of a first active material, and the active material layer being composed of a second active material. In some designs, the first active material has a substantially higher capacity relative to the second active material. In some designs, the shell may comprise a porous layer having an average pore size smaller than the scaffold matrix. In some designs, the active material disposed within the scaffold matrix may be composed of the first active material, and at least some of the pores in the shell may be infiltrated with the second active material. In some designs, the shell may be a composite material comprising an inner layer and an outer layer. In some designs, the inner layer may be a porous layer having an average pore size smaller than the scaffold matrix, and the outer layer may act as (i) a protective layer composed of a material substantially impermeable to electrolyte solvent molecules, and / or (ii) an active material layer composed of an active material different from the active material disposed within the scaffold matrix. In some designs, at least a portion of the shell material may be deposited by CVD or ALD. In some designs, at least a portion of the shell may be deposited by CVD-deposited sp 2It may include bonded carbon. In some designs, at least a portion of the shell may comprise a polymer layer. In some designs, one or more of the composite particles may comprise an active material core around which the scaffold matrix is disposed, whereby the active material disposed within the scaffold matrix may be comprised of a first active material and the active material core may be comprised of a second active material. In some designs, the first active material may have a substantially higher capacity relative to the second active material. In some designs, each or some of the composite particles may comprise external channel pores extending from the outer surface of the scaffold matrix toward the center of the scaffold matrix, reducing the average diffusion distance of ions and thereby providing channels for faster diffusion of ions to the active material disposed within the scaffold matrix. In some designs, at least some of the external channel pores may be at least partially filled with (i) a porous material having a different microstructure than the scaffold matrix, (ii) an active material different from the active material disposed within the scaffold matrix, and / or (iii) a solid electrolyte material. In some designs, the change in volume of the volume-varying active material during battery operation exceeds the corresponding change in volume of the scaffold matrix by more than about 100%. In some designs, the volume-varying active material may be in the form of nanoparticles (or crosslinked nanoparticles) of various shapes (e.g., in some designs, generally spherical, ellipsoidal, pancake-shaped, small flake-shaped, or elongated / fibrous, etc.). In some designs, the average size of the nanoparticles of the active material may range from about 3 nm to about 100 nm. In some designs, the volume-averaged characteristic pore size of the porous matrix material may range from about 0.5 nm to about 50 nm. In some designs, the surface area-averaged characteristic pore size of the porous matrix material may range from about 0.5 nm to about 50 nm. In some designs, a significant portion of the pores (e.g., about 20-100% by volume) may advantageously be slit-shaped or approximately slit-shaped.In some designs, a portion of the pores (e.g., about 5-75% by volume) can comprise spherical or approximately spherical pores having an average pore size about 2-100 times larger than the average slit-shaped or approximately slit-shaped pores. In some designs, a volume-varying active material can be in direct contact with such approximately spherical pores. In some designs, the total (e.g., average) pore volume in the porous scaffold matrix can range from about 20% to about 95% by volume (e.g., about 20% to about 30% by volume in some designs, about 30% to about 40% by volume in other designs, about 40% to about 50% by volume in other designs, about 50% to about 60% by volume in other designs, about 60% to about 70% by volume in other designs, about 70% to about 80% by volume in other designs, about 80% to about 90% by volume in other designs, and about 90% to about 95% by volume in other designs). In some designs, the total volume of all pores in the porous scaffold matrix is approximately 0.12 cm. 3 / g to about 10cm 3 / g (e.g., approximately 0.12 cm in some designs) 3 / g to approximately 0.3 cm 3 / g, and in other designs, approximately 0.3 cm 3 / g to approximately 0.6 cm 3 / g, and in other designs, approximately 0.6 cm 3 / g to approximately 1.0 cm 3 / g, and in other designs, approximately 1 cm 3 / g to about 2cm 3 / g, and in other designs, approximately 2 cm 3 / g to about 3cm 3 / g, and in other designs, approximately 3 cm 3 / g to about 4cm 3 / g, and in other designs, approximately 4 cm 3 / g to about 5cm 3 / g, and in other designs, approximately 5 cm 3 / g to about 6cm 3 / g, and in other designs, approximately 6 cm 3 / g to about 7cm 3 / g, and in other designs, approximately 7 cm 3 / g to about 8cm 3 / g, and in other designs, approximately 8 cm 3 / g to about 9cm3 / g, and in other designs, approximately 9 cm 3 / g to about 10cm 3 / g). In some designs, the total (e.g., average) volume fraction of all pores in the (nano)composite particles (including active material adapted to store and release ions during battery operation, whereby the storage and release of ions results in a substantial change in the volume of the active material of about 40% by volume or more) can range from about 10% by volume to about 70% by volume (e.g., from about 10% by volume to about 20% by volume in some designs, from about 20% by volume to about 30% by volume in other designs, from about 30% by volume to about 40% by volume in other designs, from about 40% by volume to about 50% by volume in other designs, from about 50% by volume to about 60% by volume in other designs, and from about 60% by volume to about 70% by volume in other designs). In some designs, the total (e.g., average) volume of all pores in the (nano)composite particles can range from about 0.07 cm 3 / g to approximately 1.3 cm 3 / g (e.g., approximately 0.07 cm in some designs) 3 / g to approximately 0.1 cm 3 / g, and in other designs, approximately 0.1 cm 3 / g to approximately 0.2 cm 3 / g, and in other designs, approximately 0.2 cm 3 / g to approximately 0.3 cm 3 / g, and in other designs, approximately 0.3 cm 3 / g to approximately 0.4 cm 3 / g, and in other designs, approximately 0.4 cm 3 / g to about 0.5 cm 3 / g, and in other designs, approximately 0.5 cm 3 / g to approximately 0.6 cm 3 / g, and in other designs, approximately 0.6 cm 3 / g to approximately 0.7 cm 3 / g, and in other designs, approximately 0.7 cm 3 / g to about 0.8 cm 3 / g, and in other designs, approximately 0.8 cm 3 / g to approximately 0.9 cm 3 / g, and in other designs, approximately 0.9 cm 3 / g to approximately 1.0 cm 3 / g, and in other designs, approximately 1.0 cm 3 / g to approximately 1.1 cm 3 / g, and in other designs, approximately 1.1 cm 3 / g to about 1.2 cm 3 / g, and in other designs, approximately 1.1 cm 3 / g to approximately 1.3 cm 3 / g). Both too large and too small a pore volume can result in undesirably rapid degradation or poor performance of the anode (such as a blend anode).
[0073] In some designs, one or more of the (nano)composite particles have a sp content of about 2 atomic % to about 82 atomic % as a fraction of all elements in each composite particle. 2 In some designs, one or more of the (nano)composite particles may comprise about 0.5 wt % to about 25 wt % of a polymer (which may be at least partially carbonized in some designs). In some designs, it may be preferable for one or more of the (nano)composite particles to comprise about 20 wt % to about 90 wt % of Si, as a fraction of the total weight of the particle. In some designs, it may be preferable for one or more of the (nano)composite particles to comprise about 10 atomic % to about 70 atomic % of Si, as a fraction of all elements within the particle. In some designs, it may be preferable for one or more of the (nano)composite particles to comprise about 2 atomic % to about 84 atomic % of C, as a fraction of all elements within the particle. In some designs, a significant portion (e.g., about 10-100 wt %) of one or more of the (nano)composite particles may exhibit a generally spherical, ellipsoidal, or pancake-like shape. In some designs, a significant portion of the (nano)composite particles (e.g., about 10-100% by weight, in some designs about 50% to about 100% by weight) may exhibit an average size of about 500 nm to about 20 microns. In some designs, it may be preferred for one or more of the (nano)composite particles to contain less than about 1-5% by weight of oxygen (O) as a fraction of all elements in the particle. In some designs, it may be preferred for one or more of the (nano)composite particles to contain less than about 2-10% by weight of nitrogen (N) as a fraction of all elements in the particle.
[0074] In some designs, some or all of the individual conversion-type active particles may exhibit a gradient in the distribution of active material (e.g., Si) from the center to the surface (e.g., a greater weight percent Si in the center of the particle and a lesser weight percent Si near the surface (e.g., about 10-20% of the radius-counting shell, if present) of each composite particle, or a greater volume percent Si in the center of the particle and a lesser volume percent Si near the surface (e.g., about 10-20% of the radius-counting shell, if present) of each composite particle). In some designs, some or all of the individual conversion-type active particles may exhibit a gradient in the distribution of porosity from the center to the surface (e.g., a significantly (e.g., about 20% or more) larger pore volume in the center than near the surface (e.g., about 10% of the radius) of the composite particle, or a significantly (e.g., about 20% or more) larger pore size in the center than near the surface (e.g., about 10% of the radius) of the composite particle).
[0075] In some designs, it may be advantageous for the converted (including alloyed) active material (e.g., Si-containing) powder (which may be a mixture of different powders in some designs) used to cast the blended anode (after mixing with a binder, conductive additives, and solvent in some designs) to exhibit a low median weight percent hydrogen (H). In some designs, it may be advantageous for the median H fraction to be about 0.5 wt% or less (in some designs, it may be more advantageous for a fraction of H to be about 0.1 wt% or less, in some designs, it may be more advantageous for a fraction of H to be about 0.05 wt% or less, in some designs, it may be more advantageous for a fraction of H to be about 0.01 wt% or less, and in some designs, it may be more advantageous for a fraction of H to be about 0.001 wt% or less). In some designs, it may be advantageous for the core-shell converted (including alloyed) active material (e.g., Si-containing) powder (which may be a mixture of different powders in some designs) used to cast the blended anode to have a low median weight percent of hydrogen (H) in the shell. In some designs, it may be advantageous for the median H fraction to be about 0.5 wt% or less (more advantageously, in some designs, a fraction of H of about 0.1 wt% or less; more advantageously, in some designs, a fraction of H of about 0.05 wt% or less; more advantageously, in some designs, a fraction of H of about 0.01 wt% or less; and more advantageously, in some designs, a fraction of H of about 0.001 wt% or less). In some designs, it may be advantageous for the converted (including alloyed) active material (e.g., Si-containing) composite powder (which may be a mixture of different powders in some designs) used to cast the blended anode that includes a carbon material in its composition to have a low median weight percent of hydrogen (H) in its carbon component.In some designs, it may be advantageous for the median fraction of H in the carbon to be about 0.5 wt.% or less (in some designs, it may be more advantageous for the fraction of H to be about 0.1 wt.% or less, in some designs, it may be more advantageous for the fraction of H to be about 0.05 wt.% or less, in some designs, it may be more advantageous for the fraction of H to be about 0.01 wt.% or less, and in some designs, it may be more advantageous for the fraction of H to be about 0.001 wt.% or less).
[0076] In some designs, the conversion-type (including alloyed-type) active material (e.g., Si-containing) powder (which may be a mixture of different powders in some designs) is mixed with the intercalation-type (e.g., carbonaceous, such as graphite in some designs) active material powder (which may be a mixture of different powders in some designs) used to cast the blended anode. v The median D is approximately 2 to 40 times smaller than the 50 size (e.g., effective diameter). v It may be advantageous to indicate a 50 size (eg, effective diameter).
[0077] In some designs (e.g., to achieve higher packing density or a favorable distribution (in space) of components in a blend electrode), it may be advantageous for the conversion-type active material powder to exhibit a shape described by the roundness or irregularity of its surface, with an aspect ratio (which may range from about 1 to about 50 in some designs) qualitatively similar to the shape of the intercalation-type active material powder (which may be a mixture of different powders in some designs). For example, if the intercalation-type active material particles exhibit a potato shape and a median aspect ratio of about 1.1 to about 1.6, it may be advantageous in some designs to use spherical or ellipsoidal (e.g., potato-shaped or oblate spherical) particles with a median aspect ratio of about 1 to about 2.4-3.2 (an aspect ratio within about 1.5-2 times the aspect ratio of the intercalation-type active material). In some designs, even if the intercalation-type active material powder may exhibit more irregular surface features and a wider distribution of aspect ratios (which may range from about 1 to about 50 in some designs), it may be preferable for the conversion-type active anode material particles to exhibit shapes with more rounded surface features (for example, approximately spherical or elliptical shapes, including, but not limited to, flattened spheres, potato shapes, etc.), with the majority of the particles (e.g., about 50-100 wt %) having aspect ratios in the range of about 1 to about 5 (in some designs, the range of about 1 to about 2).
[0078] In some designs, the conversion active material particles (or conversion active material containing composite particles) are SiO xThe particles may include silicon oxide having a general composition of SiO2, where x can range from about 0.2 to about 1.2. In some designs, the particles may include Si nanoparticles embedded in a SiO2 matrix, which accommodates some of the volume change of Si during cycling in the cell, thereby stabilizing its electrochemical performance. In some designs, the particles may also include a conductive carbonaceous material (e.g., as part of a coating or composite) to enhance their electrical conductivity or stability during cycling. In some designs, due to the high electronegativity of oxygen atoms, some of the Li is trapped within the particles (e.g., as Li4SiO4 or other compositions) and irreversibly lost during Li insertion (e.g., upon cell discharge, lithiation), resulting in undesirably low first-cycle coulombic efficiency when used in a blend anode (or as a standalone anode material). In some designs, to reduce such first-cycle losses, anodes including the materials may be prelithiated before being incorporated into a cell, for example, by electrochemical prelithiation or by adding Li metal-containing particles or coatings to the anode surface. Such pre-lithiation at the electrode level adds unnecessary cost and complexity to cell fabrication. In some designs, SiO xPrelithiation of silicon-based materials can generally be inexpensive. Unfortunately, in some designs, once particles are prelithiated to a level that compensates for most of the first-cycle loss, they typically become so reactive that only a small amount of Li may be effectively preloaded into the material. In the case of commonly used (e.g., aqueous) slurry coatings, excessive amounts of added Li can reduce the electrochemical potential of the particles to a level where they begin to react with the slurry solvent (water). During such a reaction, the particles can oxidize, leaching Li into the aqueous slurry, while the water can be reduced (thereby generating hydrogen bubbles). In some cases, carbon coatings are not very useful for halting such processes because partially lithiated carbon (carbon containing enough Li to be in chemical equilibrium with lithiated silicon oxide) is permeable to Li ions, which increases the electrochemical potential of the particles to a level where the remaining amount of Li is small enough (e.g., Li y C6 + yH2O → y / 2H2(g) + yLiOH + C6) readily leaches through the carbon into water (which provides only a small reduction in first cycle losses in battery cells).
[0079] In some designs, SiO xTo compensate for first-cycle losses in the containing material, it may be advantageous to partially reduce the SiO2-containing powder with other (non-Li) highly electropositive metals. In some designs, it may be further advantageous to select a metal that is less mobile and does not penetrate the carbon coating (e.g., due to having an ionic charge greater than +1 and / or a larger ionic size), thereby preventing leaching upon exposure to an aqueous slurry or moisture-containing environment of the carbon-coated (carbon-encapsulated) particles. In some designs, it may be advantageous for the carbon coating to comprise two or more components. In some designs, it may be advantageous for at least one component of the carbon coating to be deposited by carbonization of a previously deposited coating of organic material (e.g., natural or synthetic polymers or resins, including, but not limited to, pitches, such as petroleum pitch, coal tar pitch, or plant-derived pitch). In some designs, it may be advantageous for at least one component of the carbon coating to be deposited by a hydrothermal or solvothermal process. In some designs, the thickness of this layer may range from about 2 nm to about 200 nm. In some designs, it may be preferable for this layer to be conformal (enclose all or most of the particle surface). Carbonized carbon often contains pores. In some designs, the pore volume in such carbonized carbon is about 0.02 cm. 3 / g to approximately 0.7 cm 3 / g. In some designs, it may be advantageous to use vapor-deposited carbon (e.g., chemical vapor deposition (CVD) carbon) as at least a portion of the carbon coating (shell surrounding the particles) to block pores potentially left by metal ions and minimize their permeability. Many suitable precursors, including but not limited to propylene, acetylene, ethylene, methane, and the like, may be used for CVD carbon deposition. In some designs, the volume fraction of such CVD-deposited carbon, as a fraction of the total carbon in the coating, may range from about 2% to about 100% by volume. In some designs, the use of a combination of a carbonized carbon layer and vapor-deposited carbon may be particularly advantageous for forming an effective carbon shell that not only enhances the conductivity of the material but also protects its interior from undesirable reactions with water. In some designs, at least a portion of such a coating (shell) may be SiO x (e.g., SiO2) can be highly advantageously deposited after reduction. In some designs, magnesium metal (Mg, 2+ valence, 72pm Mg 2+ ionic size, and electronegativity value of 1.31, slightly greater than the Li electronegativity value of 0.98 but less than the Si electronegativity value of 1.90), which comprises an overall composition of Si-O-Mg (the relative fractions of Si, O, and Mg are omitted here for clarity, but such fractions would be understood by one of ordinary skill in the art in the context of the present disclosure). xReduction (which can, for example, at least partially reduce the SiO2 matrix to MgO, Mg—Si alloy, and Mg2SiO4) can be used. This process can be carried out at high temperatures (the process is known as magnesium-thermal reduction of silicon oxide). However, this process increases the surface area of the material, reducing its mechanical properties, and requires excessive amounts of Mg to induce a substantial reduction in first-cycle loss, resulting in other limitations. In other designs, it may be advantageous to utilize calcium (Ca, with a valence of 2+, an ionic size of 100 pm, and an electronegativity value of 1.00) to achieve a Si—O—Ca overall composition to partially compensate for first-cycle loss. In other designs, it may be advantageous to utilize strontium (Sr, with a valence of 2+, an ionic size of 118 pm, and an electronegativity value of 0.95) to achieve a Si—O—Sr overall composition to partially compensate for first-cycle loss. In other designs, it may be advantageous to utilize barium (Ba, having a valence of 2+, an ionic size of 135 pm, and an electronegativity value of 0.89) to form an overall composition of Si-O-Ba to partially compensate for first cycle losses. In other designs, it may be advantageous to utilize scandium (Sc, having a valence of 3+, an ionic size of 74.5 pm, and an electronegativity value of 1.36) to form an overall composition of Si-O-Sc to partially compensate for first cycle losses. In other designs, it may be advantageous to utilize yttrium (Y, having a valence of 3+, an ionic size of 74.5 pm, and an electronegativity value of 1.36) to form an overall composition of Si-O-Sc to partially compensate for first cycle losses. + It may be advantageous to utilize a Si-OY overall composition (having a valence of 0.05, an ionic size of 90 pm, and an electronegativity value of 1.22) to partially compensate for the first cycle loss. In some designs (e.g., in terms of achieving better electrochemical behavior or utilizing more favorable synthesis conditions), it may be advantageous to utilize a SiO xIt may be advantageous to reduce the compound with two, three, or more metals (each having a weight fraction of at least about 1 wt. % based on the total weight of the partially reduced material) to form Si-O-M1-M2, Si-O-M1-M2-M3, or Si-O-M1-M2-M3-M4, or other compounds, where M1, M2, M3, and M4 are selected from the group of metals including, among others, Li, Mg, Ca, Sr, Ba, Sc, Y, Zr, Li, Na, Cs, and K. In some designs, it may be advantageous for one or more of the metals (among M1, M2, M3, M4, etc.) to have a valence of +1 or higher (e.g., +2, +3, etc.). However, many of the above metals, when in contact with water, can produce hydroxides (some of which are harmful in some applications), making it particularly important to create an effective protective coating (shell) that encapsulates the above compositions (e.g., Si-O-M1, Si-O-M1-M2, Si-O-M1-M2-M3, or Si-O-M1-M2-M3-M4) to prevent the corresponding metal ions from leaching into the water. In some designs, such a shell can include carbon (e.g., some designs include CVD-deposited carbon and / or carbonized polymer or resin layers). In some designs, one or more very thin (e.g., about 0.2-10 nm average thickness range, and in some designs, about 0.5-3 nm average thickness range) layers of water-permeable oxides (e.g., Al2O3, TiO2, or Cr2O3) can be deposited on the outer surface of the particle as a shell component (which in some designs can include conductive carbon). In some designs, the oxide may be deposited by a sol-gel process or by an ALD process.
[0080] In some designs, instead of silicon oxide or silicon metal oxide, some or all of the converted active material particles (or converted active material containing composite particles) may comprise silicon nitride, silicon metal nitride, silicon oxynitride, or silicon metal oxynitride. In some designs, the presence of nitrogen (N) may improve the electrical and ionic conductivity of the material, further enhancing the properties of the SEI at the particle surface. In one example, the general composition of silicon (oxy)nitride is SiO x Ny where x ranges from about 0.0 to about 1.2, and y preferably ranges from about 0.05 to about 0.8. In some designs, some or all of the particles may comprise Si nanoparticles immersed in a Si3N4 (or Si2N2O) matrix, which accommodates some of the volumetric changes of Si during cycling in the cell, thereby stabilizing its electrochemical performance. In some designs, the distribution of N is such that SiO x N yand may not be completely uniform within the associated material. For example, a higher N content near the surface or at the grain boundaries of some or all of the particles may be advantageous in some designs. In some designs, there may be a gradient in N distribution from the center to the surface of some or all of the particles. In some designs, some or all of such particles may include conductive carbonaceous materials (e.g., as part of a coating or composite) to improve their electrical conductivity or stability during cycling. In some designs, to reduce first-cycle Li loss in the materials in Li-ion batteries, some or all of the particles may be doped with electropositive metals before incorporation into a cell, for example, by electrochemical prelithiation or by adding one, two, three, or more metals (each having a weight fraction of at least about 1 wt. % based on the total weight of the partially reduced material) to the bulk of the material to form compositions such as Si-N-M1, Si-ON-M1, Si-N-M1-M2, Si-ON-M1-M2, Si-N-M1-M2-M3, Si-ON-M1-M2-M3, Si-N-M1-M2-M3-M4, Si-ON-M1-M2-M3-M4, where M1, M2, M3, and M4 are selected from the group of metals including Li, Mg, Ca, Sr, Ba, Sc, Y, Zr, Li, Na, Cs, and K, among others. In some designs, it may be advantageous for one or more of the metals (among M1, M2, M3, M4, etc.) to have a valence of +1 or higher (e.g., +2 or +3, etc.). In some designs, it may be advantageous to create an effective protective coating (shell) that encapsulates the composition (e.g., Si-N, Si-ON, Si-N-M1, Si-ON-M1, Si-N-M1-M2, Si-ON-M1-M2, Si-N-M1-M2-M3, Si-ON-M1-M2-M3, Si-N-M1-M2-M3-M4, or Si-ON-M1-M2-M3-M4, etc.) so that the corresponding metal ion does not react with or leach into water. In some designs, such a shell may include carbon. In some designs, it may be advantageous for the carbon coating to include two or more components.In some designs, it may be advantageous for at least one component of the carbon coating to be deposited by carbonization of a previously deposited organic material (e.g., a natural or synthetic polymer or resin) coating. In some designs, it may be advantageous for at least one component of the carbon coating to be deposited by a hydrothermal or solvothermal process. In some designs, the thickness of this layer may range from about 2 nm to about 200 nm. In some designs, it may be preferable for this layer to be conformal (encapsulating all or most of the particle surface). As noted above, carbonized carbon often contains pores. In some designs, the pore volume is about 0.02 cm. 3 / g to approximately 0.7 cm 3 / g. In some designs, it may be advantageous to use vapor-deposited carbon (e.g., CVD carbon) as at least a portion of the carbon coating (shell surrounding the particle) to block pores potentially left by metal ions and minimize their permeability. In some designs, the volume fraction of such CVD-deposited carbon, as a fraction of the total carbon in the coating, may range from about 2% to about 100% by volume. In some designs, the use of a combination of a carbonized carbon layer and vapor-deposited carbon may be particularly advantageous for forming an effective carbon shell that not only enhances the conductivity of the material but also protects its interior from undesirable reactions with water. In some designs, one or more very thin layers (e.g., about 0.2 to 10 nm average thickness, in some designs about 0.5 to 3 nm average thickness) of water-permeable oxides (e.g., Al2O3, TiO2, or Cr2O3) may be deposited on some or all of the outer surfaces of the particle as a shell component (which, in some designs, may include conductive carbon). In some designs, the oxides may be deposited by a sol-gel process or an ALD process.
[0081] In some designs, a mixture of two or more distinctly different types of conversion (including alloying) or conversion-containing composite particles may be utilized in the design of a Li-ion battery anode without the addition of intercalation-type carbonaceous (e.g., graphite or graphitic) compounds. This is because in some designs, it may be advantageous to achieve specific values of first cycle loss, cycling stability, thermal stability, price, and other properties. For example, Si-based nanocomposite particles (with little to no O or little to no N) may exhibit very low first cycle loss, excellent stability, and relatively high price, while SiO x system or SiO x N yThe system composite particles may exhibit higher first cycle loss, lower stability, and lower cost. By blending such particles, an anode with ideal (or sufficiently near-ideal) first cycle loss, sufficient stability (for a given application), and reasonable cost can be achieved. In another example, one type of conversion (or conversion-containing) particle may exhibit higher first cycle loss and very high rate capability, while another type of conversion (or conversion-containing) particle may exhibit lower first cycle loss and lower rate capability. By combining the above particles into a single anode, some designs can achieve ideal (or sufficiently near-ideal) first cycle loss and sufficiently fast rate capability for at least a portion of the capacity. In some designs, the relative fraction of each of the above conversion (including alloying) conversion-containing composite particles, as a percentage of the total weight of all active materials in the anode, can range from about 1 wt % to about 99 wt % (e.g., preferably from about 5 wt % to about 95 wt %, more preferably from about 10 wt % to about 90 wt %, and in some designs more preferably from about 20 wt % to about 80 wt %). In some designs, two or all of the types of conversion or conversion-containing composite particles may exhibit similar (or the same) physical properties, compositions, and morphologies as those described above for use in blend anodes that do not include intercalation-type carbonaceous materials. For example, in some designs, two or all of the types of conversion or conversion-containing composite particles may include Si. In some designs, the weight-average fraction of Si in two or all of the types of particles may range from about 20% to about 80% by weight. As noted above, in some designs, two or all of the types of particles preferably (i) exhibit a reasonably high average volume change (e.g., about 8-180% by volume) during the first cycle and a moderate average volume change (e.g., about 4-50% by volume) during subsequent charge / discharge cycles; (ii) exhibit an average size in the range of about 0.2 to about 40 microns (more preferably, in some designs, about 0.3 to about 20 microns); and (iii) exhibit an average specific surface area of about 0.1 to about 100.0 m. 2 / g (in some designs, more preferably about 0.25 to about 25.0 m 2 / g). As noted above, in some designs, two or all of the particle types may contain internal (closed) pores. In some designs, the total volume of such pores is about 0.07 cm 3 / g to approximately 1.3 cm 3 / g range.
[0082] In some designs, mixtures of two, three, or more distinctly different types of intercalation-type particles (e.g., graphite particles formed from different precursors, heat-treated at different temperatures, or having substantially different sizes, shapes, or surface coatings; hard or soft carbon particles formed from different precursors, heat-treated at different temperatures, or having substantially different sizes, shapes, or surface coatings, etc.) may be advantageously utilized in designing blend anodes for metal-ion (e.g., Li-ion) batteries containing conversion-type (including alloyed-type) anode materials. This is because, in some designs, mixtures of different intercalation-type materials may provide a superior (more desirable for a given application) combination of anode density, anode volumetric capacity, anode cycling stability, anode first-cycle coulombic efficiency, and anode rate performance (e.g., charge rate performance) over a desired temperature range. In some designs, the intercalation-type carbonaceous powder (which in some designs may be a mixture of different carbon powders) used to cast the blend anode has a median D50 size (D v50, median of volume distribution) in the range of about 2.5 microns to about 25 microns (about 2.5 μm to about 5 μm in some designs, about 5 μm to about 7 μm in some designs, about 7 μm to about 10 μm in some designs, about 10 μm to about 15 μm in some designs, about 15 μm to about 20 μm in some designs, and about 20 μm to about 25 μm in some designs). In some designs, it may be advantageous to use intercalated carbonaceous powders of different sizes to increase the packing density (and therefore the volumetric capacity) of the blend anode. In some designs, it may be advantageous for the intercalated carbonaceous powder (which in some designs may be a mixture of different carbon powders) used to cast the blend anode to exhibit a reversible capacity in the range of about 300 mAh / g to about 380 mAh / g (in some designs, about 300 mAh / g to about 340 mAh / g, in some designs, about 340 mAh / g to about 350 mAh / g, in some designs, about 350 mAh / g to about 360 mAh / g, and in some designs, about 360 mAh / g to about 380 mAh / g). In some designs, it may be advantageous for the intercalation-type carbonaceous powder used to cast the blended anode (which in some designs may be cast from a slurry containing a mixture of different carbon powders) to exhibit a first cycle coulombic efficiency in the range of about 75% to about 99% (in some designs, about 75% to about 85%, in some designs, about 85% to about 90%, in some designs, about 90% to about 95%, in some designs, about 95% to about 96%, in some designs, about 96% to about 97%, and in some designs, about 97% to about 99%). In some designs, it may be advantageous for the intercalation-type carbonaceous powder used to cast the blended anode (which in some designs may be cast from a slurry containing a mixture of different carbon powders) to exhibit a median BET specific surface area (SSA) of about 0.5 m 2 / g to about 30m 2 / g (approximately 0.5m in some designs) 2 / g to about 1m 2 / g, and in some designs, approximately 1 m 2 / g to about 2m 2 / g, and in some designs, approximately 2m 2 / g to about 3m 2 / g, and in some designs, approximately 3m 2 / g to about 4m 2 / g, and in some designs, approximately 4m 2 / g to about 6m 2 / g, and in some designs, approximately 6m 2 / g to about 10m 2 / g, and in some designs, approximately 10m 2 / g to about 30m 2 / g). In some designs, a higher BET SSA can result in higher first cycle losses and faster rate capability. In some designs, the intercalation carbonaceous powder used to cast the blend anode (which in some designs may be cast from a slurry containing a mixture of different carbon powders) has a true median density (e.g., as measured by helium pycnometer) of about 1.9 g / cm. 3 to approximately 2.27 g / cm 3 (Some design examples are approximately 1.9g / cm 3 to approximately 1.95 g / cm 3 , and in some designs, approximately 1.95 g / cm 3 to approximately 2.00 g / cm 3 , and in some designs, approximately 2.00 g / cm 3 to approximately 2.05 g / cm 3 , and in some designs, approximately 2.05 g / cm 3 to approximately 2.10 g / cm 3 , and in some designs, approximately 2.10 g / cm 3 to approximately 2.15 g / cm 3 , and in some designs, approximately 2.15 g / cm 3 to approximately 2.20 g / cm 3 , and in some designs, approximately 2.20 g / cm 3 to approximately 2.27 g / cm 3) range. In some designs, it may be advantageous for the intercalation-type carbonaceous powder used to cast the blended anode (which may be cast from a slurry containing a mixture of different carbon powders) to exhibit a low median weight percent of hydrogen (H). In some designs, it may be advantageous for the median fraction of H to be about 0.5 wt% or less (more advantageously, in some designs, a fraction of H of about 0.1 wt% or less; more advantageously, in some designs, a fraction of H of about 0.05 wt% or less; more advantageously, in some designs, a fraction of H of about 0.01 wt% or less; and more advantageously, in some designs, a fraction of H of about 0.001 wt% or less). In some designs, it may be advantageous for at least a certain fraction (e.g., about 20 wt% to about 100 wt%) of the intercalation-type carbonaceous powder used to cast the blended anode (which may be cast from a slurry containing a mixture of different carbon powders) to comprise a surface layer (shell). In some designs, the median thickness of the shell can range from about 0.50 nm to about 200.0 nm (about 0.50 nm to about 2.00 nm in some designs, about 2.00 nm to about 5.00 nm in some designs, about 5.00 nm to about 10.00 nm in some designs, about 10.00 nm to about 20.00 nm in some designs, and about 20.00 nm to about 200.00 nm in some designs). In some designs, the shell can comprise one, two, three, or more distinct layers. In some designs, the shell can comprise primarily (e.g., about 20% to about 100% by weight) carbon. In some designs, at least a portion of such a carbon-containing shell can be deposited by carbonization (pyrolysis) of a pre-deposited coating of organic material (e.g., natural or synthetic polymers or resins, including, but not limited to, pitches, such as petroleum pitch, coal tar pitch, or plant-derived pitch). In some designs, it may be advantageous if at least one component of the carbon coating is deposited by a hydrothermal or solvothermal process.In some designs, at least a portion of the shell can be deposited by CVD (including, but not limited to, carbon CVD) or ALD. In some designs, at least a portion of the shell (or a portion of the shell layer) can include a ceramic material (e.g., a sulfide, oxide, oxynitride, or oxyfluoride material, among others, in some designs from about 0.001% to about 100% by weight). In some designs, the ceramic material can include at least one of the following electropositive elements: C, Li, H, Mg, Sr, Ba, Sc, Y, Zr, Al, Ti, or Cr. In some designs, the ceramic material can include at least one of the following electronegative elements: O, N, S, Se, P, or F.
[0083] In some designs, it may be advantageous for at least one of the intercalation-type particles in the blend anode to be natural or artificial graphite. Natural graphite is often more susceptible to deformation during calendering (anode densification), which may be beneficial for use in some blend anode designs. As a result, higher electrode densities may be obtained in blend anodes in some designs. Furthermore, natural graphite may exhibit higher volumetric capacity and / or higher first cycle coulombic efficiency. Its moderately high (e.g., about 4 mAh / cm) 2When a mixture of artificial and natural graphite is used in the design of a "normal" pure intercalation anode with a reversible areal capacity loading (greater than 0.01), the fraction of artificial graphite can be substantially higher (e.g., comprised of a certain weight percent of natural graphite ranging from about 5% to about 20% by weight, with the weight percent of artificial graphite ranging from about 80% to about 95% by weight). This is because, for highly loaded electrodes, intercalation anodes with a high fraction of natural graphite tend to form more twisted anodes, resulting in slower charging rates or faster degradation. In some designs, various design considerations can be used to design a blend anode that includes a conversion anode material. In particular, for blend electrodes containing a substantial fraction of conversion-type active material (e.g., about 15% to about 90% of the total capacity), it may be beneficial to utilize a higher fraction of natural graphite (e.g., about 20% to about 100% by weight of the total graphite anode material in the blend anode, about 20% to about 30% by weight in some designs, about 30% to about 50% by weight in some designs, about 50% to about 75% by weight in some designs, and about 75% to about 100% by weight in some designs). In some cases, a higher fraction of capacity comes from the conversion-type active material, and larger size of the conversion-type active material particles (relative to the size of the graphite particles) may correlate with the higher fraction of natural graphite utilized in some blend anode designs. In some designs, it may be advantageous for at least one intercalation-type particle in the blend anode to exhibit an ellipsoidal, potato-like, or pancake-like shape. In some designs, it may be advantageous for about 10-100% by weight of the intercalation-type particles in the blend anode to exhibit an ellipsoidal, potato-like, oblate sphere, or pancake shape.
[0084] In some designs, it may be advantageous for at least one type of intercalation-type particle in the blend anode to comprise one of the following: (i) "non-graphitic" hard carbon (including spherical, ellipsoidal, or potato-shaped hard carbon particles), (ii) mixed carbon (soft carbon-hard carbon) materials (including spherical, ellipsoidal, or potato-shaped particles), or (iii) soft carbon (including, but not limited to, spherical, ellipsoidal, or potato-shaped carbon particles, including mesocarbon microbeads (MCMB)). The non-graphitic carbons may exhibit higher first cycle losses, lower density, lower volumetric capacity, higher average charge potential, higher average discharge potential, and higher rate capability compared to natural or synthetic graphite, or may exhibit better cycling stability (e.g., especially when regularly exposed to current densities corresponding to high charge or discharge rates, e.g., from about 2 C to about 20 C rates).
[0085] In some applications, it may be highly advantageous to use dry electrode processing or aqueous slurries to fabricate blend anodes in order to reduce the cost of fabricating Li-ion batteries and reduce the use of toxic solvents in the fabrication of slurry / cast electrodes. However, in some cases, achieving high-quality, highly uniform blend anodes with aqueous slurry processing may be difficult due to differences in the surface density and / or wetting properties (e.g., hydrophilicity) of the different active components in the active material blend. As a result, the resulting blend anodes may suffer from poor rate capability (in the desired temperature range), cycling stability, volumetric capacity, or other undesirable performance characteristics. One or more embodiments of the present disclosure are directed to overcoming this limitation.
[0086] In some designs, it may be advantageous for a majority (e.g., about 50-100 wt %, preferably about 75 wt % to about 100 wt %, in some designs about 85 wt % to about 100 wt %, in some designs about 90 wt % to about 100 wt %, in some designs about 95 wt % to about 100 wt %) of the active materials in the blended anode (including intercalation and conversion-type active materials) to exhibit similar wetting angles (e.g., within about ±25 degrees, in some designs about ±10 degrees, in some designs about ±5 degrees) when contacted with pure water (or the appropriate solvent for the blended anode slurry). In some designs, it may be advantageous for a majority of the active material in the blended anode (e.g., about 50-100 wt %, preferably about 75 wt % to about 100 wt %, in some designs about 85 wt % to about 100 wt %, in some designs about 90 wt % to about 100 wt %, and in some designs about 95 wt % to about 100 wt %) to exhibit a similar wetting angle (e.g., within about ±20 degrees) when contacted with the aqueous solution of binder (or mixture of binders or mixture of binder and surfactant) used to prepare the blended anode (e.g., when the polymer or copolymer binder is used at the same concentration as in the slurry, e.g., at the same pH as the slurry). In some designs, it may be advantageous for a majority of the active material in the blend anode (e.g., about 50-100 wt%, preferably about 75 wt% to about 100 wt%, in some designs about 85 wt% to about 100 wt%, in some designs about 90 wt% to about 100 wt%, and in some designs about 95 wt% to about 100 wt%) to exhibit a wetting angle of about 90 degrees or less (about 90 degrees to about 80 degrees in some designs, about 80 degrees to about 70 degrees in some designs, about 70 degrees to about 60 degrees in some designs, about 60 degrees to about 45 degrees in some designs, and 45 degrees or less in some designs) when contacted with water or an aqueous binder solution (or a binder mixture or binder and surfactant mixture) used to prepare the blend anode.For example, the contact angle on a powder can be determined by using, for example, (i) a static test (based on the Laplace equation for capillary rise in a tube) or (ii) the Washburn method (based on measuring the weight of a liquid (e.g., water) that permeates a powder bed by capillary action) or other suitable method.
[0087] In some designs (e.g., to achieve a lower wetting angle for one or more active materials in contact with water or an aqueous binder solution, or to achieve comparable wetting angles for different types of active materials used in a slurry, or to achieve a favorable distribution (in space) of components in a blended electrode, etc.), it may be advantageous to treat the surface of at least one active powder material (used in a blended anode) by using one or more of the following techniques (i) to (iv): (i) gas-phase surface oxidation (e.g., the treatment of the surface with oxygen atoms, oxygen ions, oxygen-containing radicals, water molecules (HO), OH anions / radicals, H cations, halogens (e.g., F molecules or F ), etc.); -(ii) liquid-phase chemical oxidation (e.g., by exposing the powder to oxidizing acids such as H2SO4, HNO3, or mixtures thereof (or solutions of acids) at temperatures up to about their boiling points, exposing the powder to hydrogen peroxide (H2O2) or a solution of hydrogen peroxide); (iii) electrochemical oxidation; (iv) heat treatment in a reducing (e.g., gaseous) environment (e.g., to remove some or most of the functional groups, modify the surface termination, etc.), heat treatment (e.g., at temperatures ranging from about 400°C to about 1000°C) in H2, N2, Ar, He, mixtures thereof, vacuum, etc. In some designs (e.g., to achieve comparable wetting angles for different types of active materials used in the slurry, or to achieve comparable affinity for binders or conductive additives for different active materials, etc.), it may be advantageous to treat the surfaces of at least a portion (e.g., about 20-100 wt.%) of the carbonaceous intercalation-type active material and at least a portion (e.g., about 20-100 wt.%) of the conversion-type (including alloyed-type and mixed conversion intercalation) active material using the same technique or a combination of the same techniques (in some designs, by using the same or similar parameters, composition of the treatment medium, treatment temperature, treatment pressure, etc.).
[0088] In some designs (e.g., to achieve comparable wetting angles for different types of active materials used in the slurry, or to achieve comparable affinity for binders or conductive additives for different active materials), it may be advantageous to coat the surface of at least a portion (e.g., about 20-100 wt%) of the carbonaceous intercalation-type active material and at least a portion (e.g., about 20-100 wt%) of the conversion-type (including alloyed and mixed conversion intercalation) active material with a surface layer (shell or shell component) of similar (or identical) composition (and, in some designs, similar composition and similar microstructure). In some designs, this surface layer may coat a significant portion (e.g., about 20-100%) of the surface of each particle.
[0089] In some designs, a surface layer on the surface of at least a portion (e.g., about 20-100 wt%) of the carbonaceous intercalation-type active material and / or at least a portion (e.g., about 20-100 wt%) of the conversion-type (including alloyed and mixed conversion intercalation) active material can be deposited by using one, two, or more of the following techniques (i)-(xii): (i) hydrothermal deposition with or without heat treatment, (ii) solvothermal deposition with or without heat treatment, (iii) coating with an organic material (e.g., natural or synthetic polymers or resins including, but not limited to, pitches such as petroleum pitch, coal tar pitch, or plant-derived pitch) with or without subsequent carbonization, (iv) coating with an organometallic material with or without subsequent heat treatment or carbonization, (v) coating with a metalloorganic material with or without subsequent heat treatment or carbonization, (vi) CVD with or without heat treatment, (vii) ALD with or without heat treatment, (viii) sol-gel processing with or without heat treatment, (ix) electroless deposition with or without heat treatment, (ix) electroplating with or without heat treatment, (x) layer-by-layer (LbL) deposition with or without heat treatment, (xi) electrophoretic deposition with or without heat treatment, and (xii) physical vapor deposition (PVD) (e.g., sputtering) with or without heat treatment. In some designs, the layer may be deposited on a powder. In some designs, the powder may be advantageously stirred to deposit the coating layer more uniformly or quickly. In some designs, the layer may be deposited on an electrode. In some designs, the deposition on the electrode may be roll-to-roll.
[0090] In some designs (for various performance characteristics, particularly for blend anodes prepared from aqueous slurries), it may be advantageous for composite converted active material particles (including alloyed particles and mixed converted / intercalated particles) with a carbon surface layer to exhibit a particular spectral signature detected in Raman spectroscopy studies. In particular, in some designs, the ratio of the intensity of the carbon D band to the carbon G band (I) in the Raman spectrum of a majority (e.g., about 50-100 wt%) of the composite converted particles may be D / IG ) (e.g., measured using a laser operating at a wavelength of about 532 nm, e.g., about 1000 to about 2000 wavenumber cm -1 In the spectral range of , the chromaticity is analyzed by fitting two Gaussian peaks after linear background subtraction in this range, but the I of about 0.7 D / I G from about 2.7 I D / I G It may be advantageous to use a ratio of the D and G peaks (about 0.7 to about 2.0 in some designs, and about 0.9 to about 2.1 in some designs). Note that these ranges use the ratio of the absolute intensities of the D and G peaks (obtained by fitting a spectrum with two G peaks and two D peaks using a Gaussian model and using the intensity / height of the highest G peak and the highest D peak), not the ratio of the integrated intensities (area under each of the D and G peaks). However, in some designs, it may be advantageous to use a ratio of the integrated intensity (area under the corresponding peak) of the D peak to the G peak (obtained by fitting a spectrum with two G peaks and two D peaks using a Gaussian model and using the intensity / height of both Gaussian models G peaks (I G総面積 ) and calculate the sum of the areas under both Gaussian model D peaks (I D総面積 ) and calculate the ratio of these two sums (I D総面積 / I G総面積 ) can be advantageously in the range of about 0.7 to about 2.7 (or 4 in some designs). In other designs, the ratio is from about 0.7 to about 2.0.
[0091] In some designs, the full width at half maximum (FWHM) of the carbon G band in the Raman spectrum of most of the carbon-containing composite conversion particles (e.g., measured using a laser operating at a wavelength of about 532 nm, e.g., about 1000 to about 2000 wavenumber cm -1 In the spectral range of , the spectral distribution is analyzed by fitting two Gaussian peaks after linear background subtraction in this range) at approximately 10 cm -1 Approximately 150cm from -1(Some design examples are approximately 50 cm -1 Approximately 100cm from -1 ) range.
[0092] In some designs (for various performance characteristics of the blend anode), it may be advantageous for at least a portion (e.g., about 20-100 wt %, and in some designs preferably about 50 wt % to about 100 wt %) of the carbon surface-layered converted active material particles (including alloyed particles and mixed converted / intercalated particles) to have a carbon layer with a median in-plane crystallite size La estimated (e.g., by using Raman spectroscopy, X-ray diffraction, or related or other suitable techniques) in the range of about 10 Angstroms (1.0 nm) to about 300 Angstroms (30 nm) (about 1.2 nm to about 4.5 nm in some designs, and about 1.7 nm to about 2.5 nm in some designs). In some designs, it may be advantageous for at least a portion (e.g., about 20-100 wt. %, and in some designs, preferably about 50 wt. % to 100 wt. %) of the carbon-containing converted active material particles (including alloyed particles) to comprise carbon with a median in-plane crystallite size La estimated (e.g., by using Raman spectroscopy, X-ray diffraction, or related or other suitable techniques) in the range of about 10 Angstroms (1.0 nm) to about 300 Angstroms (30 nm) (in some designs, about 1.2 nm to about 4.5 nm, and in some designs, about 1.7 nm to about 2.5 nm).
[0093] In some designs, both (i) a majority (e.g., about 50 wt. % or more) of the converted active material particles (including alloyed particles and mixed converted / intercalated particles, and in some designs containing Si) with a carbon surface layer and (ii) a majority (e.g., about 50 wt. % or more) of the intercalated carbonaceous active material particles (including, but not limited to, with a carbon surface layer) are measured using a Raman spectrum of carbon (e.g., measured using a laser operating at a wavelength of about 532 nm, e.g., by subtracting a linear background and fitting the carbon spectrum with two G peaks and two D peaks using a Gaussian model to obtain an I peak). D / I GBy using the intensity / height of the highest G peak and the highest D peak for the calculation, a wavenumber cm of about 1000 to about 2000 -1 (analyzed in the spectral range of D / I G Intensity ratio (in some designs, the integrated intensity ratio I D総面積 / I G総面積 ) in the range of about 0.7 to about 2.7 (in some designs, about 0.7 to about 2.0, and in some designs, about 0.9 to about 2.1).
[0094] In some designs, both (i) a majority (e.g., about 50 wt. % or more) of the carbon surface-layered converted active material particles (including alloyed particles and mixed converted / intercalated particles, and in some designs containing Si) and (ii) a majority (e.g., about 50 wt. % or more) of the intercalated carbonaceous active material particles (including, but not limited to, carbon surface-layered) have a FWHM of the carbon G band in a Raman spectrum (e.g., measured using a laser operating at a wavelength of about 532 nm, e.g., about 1000 to about 2000 wavenumber cm). -1 In the spectral range of , the spectral distribution is analyzed by fitting two Gaussian peaks after linear background subtraction in this range) at approximately 10 cm -1 Approximately 150cm from -1 (Some design examples are approximately 50 cm -1 Approximately 100cm from -1 ) range.
[0095] In some designs, it may be advantageous for both (i) a majority (e.g., about 50% by weight or more) of the carbon surface-layered converted active material particles (including alloyed particles and mixed converted / intercalated particles, and in some designs containing Si) and (ii) a majority (e.g., about 50% by weight or more) of the intercalated carbonaceous active material particles (including, but not limited to, carbon surface-layered) to have a median in-plane crystallite size La of carbon estimated (e.g., by using Raman spectroscopy, X-ray diffraction, or related or other suitable techniques) in the range of about 10 angstroms (about 1.0 nm) to about 300 angstroms (about 30 nm) (about 1.2 nm to about 4.5 nm in some designs, and about 1.7 nm to about 2.5 nm in some designs).
[0096] In some designs, the porosity (volume fraction in the electrode occupied by the electrolyte-filled spaces left between the active anode particles, binder, and conductive additives in the anode) needs to be carefully optimized for the application of the blend anode in Li-ion battery cell designs. Too high a porosity in the blend anode can reduce the volumetric energy density of some Li-ion batteries. At the same time, insufficient porosity (for a given application) can result in unacceptably fast degradation or unacceptably low power or charge rate capability in Li-ion cell applications due to the slower Li-ion migration during charge or discharge as the amount of highly ion-conducting electrolyte decreases. The problems induced by insufficient porosity are as follows: 2 This can be particularly detrimental for high electrode loadings (greater than 1000 .mu.m). In some cases, smaller electrode porosity can be tolerated in anodes with smaller anode thicknesses. Similarly, in some designs, larger electrode pore volumes may be required for larger blend anode thicknesses and higher blend anode areal capacity loadings.
[0097] One conventional procedure for producing high-density electrodes involves (i) slurry preparation, (ii) casting the electrode onto a current collector foil, (iii) drying, followed by (iv) rolling (also referred to as "calendaring") the cast electrodes to increase their density, smooth the electrode surface (reducing the electrode surface roughness from about 1-20 microns to about 0.1-0.5 microns or less), increase the electrode's electrical conductivity, (in some cases) increase the electrode's cohesion or adhesion to the current collector, reduce electrode porosity to an optimum value, and achieve other desired results. While the ideal porosity and density of the blend anode prior to incorporation into a cell depends on many factors (from the composition of the blend anode to the cell operating conditions and areal capacity loading of the cell) for some blend electrode designs, the porosity of the dried and calendered electrode can preferably range from about 5% to about 50% by volume (for some designs, from about 15% to about 35% by volume). Similarly, in some designs, the packing efficiency of the total active particles in the blended (calendared) anode prior to incorporation into a cell preferably ranges from about 50% to about 75% by volume (about 55% to about 70% by volume in some designs), with the remainder of the pore volume (about 25% to about 50% by volume) being occupied by binder, conductive additives, and pores. Also, in some designs, the density of the majority of the blended anode (not considering the mass and volume of the current collector foil) is preferably about 1.0 g / cm. 3 to approximately 2.0 g / cm 3 (Some design examples are approximately 1.1 g / cm 3 to approximately 1.6 g / cm 3 ) range.
[0098] In some designs, the first charge (lithiation)-induced volume increase of the conversion-type (e.g., Si-containing) active material of the blend anode can be larger compared to the first charge volume increase of the intercalation-type (e.g., carbonaceous) material of the blend anode. Thus, in some designs, upon first charge, the blend anode can experience a larger thickness increase compared to a purely intercalation-type (e.g., carbonaceous) anode when cycled in a Li-ion pouch cell. At the same time, purely intercalation-type (e.g., graphite-based) anodes can exhibit a substantial increase (e.g., about 2-12%) in average end-of-life thickness after the first "formation cycle" when cycled in pouch cells over a range from about 0-10% depth of discharge (DOD) in Li-ion cells to about 90-100% DOD (without pre-lithiation before the first charge and without significant pressure (e.g., above about 1 atmosphere) during cycling) with typical negative-to-positive (NP) capacity loading ratios (e.g., about 1.05 to about 1.20).However, in some designs (e.g., to achieve sufficiently high cycle life and other desirable properties), the cation exchange active anode material may be used in pure form in a Li-ion battery cell design (where the anode consists of only a conversion-type active anode material, binder, and additives, without blending with a carbonaceous intercalation-type active anode material, e.g., without blending with graphite) and cycled in a range of about 0-10% DOD to about 90-100% DOD in a pouch-type Li-ion cell with a negative-to-positive (NP) capacity loading ratio of about 1.05 to about 1.20 (without pre-lithiation before the first charge and without significant pressure (e.g., above about 1 atmosphere) during cycling). It may be preferable to use such converted active material particles (or at least a significant fraction of such converted active material, e.g., about 20-100 wt. % in some designs, about 50-100 wt. % in some designs, about 80-100 wt. % in some designs, of the total amount of all converted active material particles in the anode) in a blended anode that exhibits a minimal electrode-level average increase in thickness (e.g., about 0.0 to about 4.0% average increase in thickness, about 0.0 to about 2% in some designs, about 0.0 to about 1% in some designs) at about 0-10% depth of discharge (DOD) beyond the "formation" cycle (or a few cycles, 2-5 initial cycles in some designs) to end-of-life.In some designs, when used in pure form in a Li-ion battery cell design (where the anode consists solely of a conversion-type active anode material, binder, and additives, and is not blended with a carbonaceous intercalation-type active anode material, e.g., not blended with graphite) and cycled from about 0-10% depth of discharge (DOD) to about 90-100% DOD in a Li-ion cell with a negative-to-positive (NP) capacity loading ratio of about 1.05 to about 1.20 (not pre-lithiated before the first charge and not subjected to significant pressure (e.g., above about 1 atmosphere) during cycling), the battery may be capable of withstanding up to 200 cycles (in some designs, up to 400 cycles, in some designs, up to 400 cycles) It may be preferable to use such converted active material particles (or at least a significant fraction of the converted active material, e.g., about 20-100 wt. % in some designs, about 50-100 wt. % in some designs, about 80-100 wt. % in some designs, based on the total amount of all converted active material particles in the anode) in a blended anode that exhibits a minimal electrode-level average increase in thickness at a DOD of about 0-10% (e.g., about 0.0-4.0%, about 0.0-2%, about 0.0-1%) over the initial "forming" cycle (a few cycles, 2-5 initial cycles in some designs), up to 800 cycles in some designs.
[0099] In some designs, the amount, type, and various properties of the binder or binder composition (e.g., swelling in the electrolyte, mechanical properties, adhesion to the active particles and current collector, etc.) can be varied to achieve a wide range of capacity loadings, but particularly between about 3.5 and 4 mAh / cm. 2More than 100% of the binder composition can have a significant impact on the performance characteristics of the blend anode in a Li-ion battery cell (e.g., cycle stability at various current densities at various temperatures, rate capability, etc.). The exact optimal binder composition and properties can often depend on the size, shape, surface chemistry, and volume change of the individual active material components in the blend anode and their associated fractions. However, certain binder compositions have been found to work particularly well, and specific properties of the binder can be particularly important for good performance across a wide range of blend (e.g., Si-containing) anodes.
[0100] In some designs, it may be advantageous to use the same binder (or binder components) in preparing the blended anode that works well for all individual components (e.g., for the individual intercalation-type active material powders and their mixtures used in the blended anode, and for the individual conversion-type active material powders and their mixtures used in the blended anode). In some designs, a linear composite model can be effectively used to identify a near-optimal (e.g., within about ±50%, and in some designs, within ±25%) weight fraction of binder in the blended electrode (as a fraction of all solids in the electrode or all solids in the slurry). (The weight percent of binder in the blended electrode can be estimated by identifying near-optimal weight percents of binder in slurries containing only intercalation-type active material and in slurries containing only conversion-type active material, and multiplying them by the corresponding weight fractions of intercalation-type and conversion-type active material in the blended anode.) It should be noted that in some cases where the binder contains two or more binder components, the optimal ratio of the components in the binder may be substantially different for different active material components in the blend anode. Furthermore, in some design examples, the optimal ratio of the components in the binder for the blend anode may be estimated by using a linear composite model.
[0101] Illustrative examples of suitable and relatively common polymers (or components of polymer mixtures) that can serve well as binders (or binder components) for a wide range of blend anodes include, but are in no way limited to, carboxymethyl cellulose (CMC)-based binders, particularly those further comprising elastomeric polymer nanoparticles such as styrene butadiene rubber (SBR) (including, but not limited to, Na-CMC, Li-CMC, K-CMC, and the like, and mixtures thereof, with the Li-salt often being particularly suitable in some designs); polyacrylic acid (PAA) and its various salts (including, but not limited to, Na-PAA, Li-PAA, K-PAA, Ca-PAA, and the like, and mixtures thereof, with the Li-PAA salt often being particularly suitable in some designs); (poly)alginic acid and its various salts (Na-alginate ester, Li-alginate ester, Ca-alginate ester, K-alginate ester, and many others, and various mixtures thereof, with the Li-alginate ester often being particularly suitable in some designs); maleic acid and its various salts salts (e.g., Li, Na, K, etc., with Li-salts often being particularly suitable in some designs), various (poly)acrylic acids (including, but not limited to, dimethylaminoethyl acrylate, and many others), various (poly)acrylamides, various polyesters, styrene butadiene rubber (SBR), (poly)ethylene oxide (PEO), (poly)vinyl alcohol (PVA), cyclodextrin, maleic anhydride, methacrylic acid and its various salts (e.g., Li, Na, K, etc., with Li-salts often being particularly suitable in some designs), various (poly Examples of suitable polymers include (poly)ethyleneimine (PEI), various (poly)amideimides (PAI), various (poly)amidoamines, various other polyamine-based polymers, various (poly)ethyleneimines, sulfonic acids and their various salts, various catechol group-containing polymers, various lignin-containing or lignin-derived polymers, various epoxies, various cellulose-derived polymers (including, but not limited to, nanocellulose fibers and nanocrystals, carboxyethylcellulose, etc.), chitosan, other polymers (e.g., preferably water-soluble polymers), and various copolymers and mixtures thereof.
[0102] In some designs, it may be advantageous for blended anodes to be cast from aqueous slurries. Binders (e.g., about 15-100 wt. % of all solids in the binder, in some designs about 50-100 wt. % of all solids in the binder) that contain a significant portion of polymer that exhibits no or relatively little swelling (e.g., about 0.0001-5 vol. %, in some designs about 0.001 vol. % to about 2 vol. %) upon exposure to electrolyte may work particularly well in blended anode designs.
[0103] In some designs, it may be advantageous for a binder for a blended anode comprising substantially volume-changing conversion-type active anode material particles to comprise two or more different components with substantially different shapes, substantially different solubilities in the slurry solvent (e.g., differing by a factor of about 2 or more in some designs, and in some designs one component may not be soluble at all), substantially different swelling in the electrolyte (e.g., differing by a factor of about 2 or more), and / or substantially different mechanical properties (e.g., differing by a factor of about 2 or more in modulus, resilience, etc.). In some designs, it may be advantageous to use elastic nanoparticles (e.g., having an average size ranging from about 10 nm to about 500 nm) in combination with more unstable and / or water-soluble binders (e.g., including the aforementioned CMC, Na-CMC, Li-CMC, K-CMC, alginic acid, Na-alginate esters, Li-alginate esters, PAA acid, Na-PAA, Li-PAA, mixed CMC salts, mixed alginates, mixed PAA salts, various acrylic binders, various alginate esters, various mixtures and copolymers thereof, etc.) to overcome their unstable nature and be effectively utilized with both small and large (e.g., Si-containing) composite particles. In some designs, elastic nanofibers or nanoribbons (e.g., having an average diameter in the range of about 2 nm to about 500 nm, an average length in the range of about 10.0 nm to about 500,000.0 nm, and an average aspect ratio in the range of about 3:1 to about 10,000:1) or elastic flakes (e.g., having an average thickness in the range of about 1 nm to about 500 nm, an average length in the range of about 10.0 nm to about 500,000.0 nm, and an average aspect ratio in the range of about 3:1 to about 10,000:1, and in some designs containing pores) may be advantageously used in place of or in addition to conventional elastic nanoparticles.Suitable examples of particle compositions include, but are not limited to, SBR, polybutadiene, polyethylene, polyethylene propylene, styrene-ethylene-butylene, ethylene-vinyl acetate, polytetrafluoroethylene, perfluoroalkoxyethylene, isoprene, butyl rubber, nitrile rubber, ethylene-propylene rubber, polyacrylic rubber, silicone rubber, fluorosilicone rubber, polyether block amide, polysiloxane and its various copolymers (such as polydimethylsiloxane), chlorosulfonated polyethylene, ethylene-vinyl acetate, and various mixtures and copolymers thereof, among other suitable elastomers. In some designs, a suitable mass fraction of the elastic nanoparticles (or nanofibers or nanoflakes) can range from about 5% to about 70% by weight (as a fraction of the total binder content in the blended anode). Some conventional purely intercalation anodes (e.g., graphite-based) may contain spherical SBR particles (which may be elastic in some designs), but these typically comprise only about 15% to about 50% by weight of the total binder weight fraction. In contrast, in some designs, it may be advantageous for the weight fraction of elastic nanoparticles (or nanofibers or nanoflakes) (made of SBR or other elastic materials, including those mentioned above) to range from about 55% to about 95% by weight in a conversion-type anode (e.g., Si-containing). The size, volume change value, and shape of the volume-changing nanocomposite particles may affect the optimal elastic particle fraction. In some cases, larger volume changes, larger particles, and more spherical (e.g., roughly spherical or potato-shaped) particles (e.g., as opposed to flake-shaped or randomly shaped particles) may require a larger fraction of elastic particles in the binder. Thus, the relative fraction of elastic particles in a blend anode may be estimated using a linear composite model. In some designs, it may be advantageous for the elastic particles to exhibit specific mechanical properties. In some designs, the maximum elongation (elongation at break) of the elastic nanoparticles (or nanofibers or nanoflakes) can preferably range from about 20.0% to about 10,000.0% (in some designs, from about 50.0% to about 5,000.0%).In some designs, the yield strain of the elastic nanoparticles (or nanofibers or nanoflakes) may preferably exceed about 20% (in some designs, the yield strain of the elastic nanoparticles may exceed about 100%).
[0104] In some designs, it may be advantageous to use a water-soluble copolymer binder in the blend anode. In some designs, the copolymer binder may have a simple linear structure (e.g., if it is desirable to have plastic deformation in the binder at room temperature or elevated temperature to accommodate volume changes in the conversion-type active material particles during charging, or to accommodate electrode deformation during calendering, which may also be performed at room temperature or, in some designs, elevated temperature). In other designs, the copolymer binder may be crosslinked. In some designs, a crosslinked copolymer binder may be utilized in the slurry (e.g., to reduce swelling or dissolution in water). In some designs, crosslinking may occur after electrode casting. In some designs, it may be advantageous to induce some crosslinking after electrode calendering (e.g., to allow plastic deformation and stress relief during and / or after calendering). In some designs, it may be advantageous to induce crosslinking after battery assembly (e.g., during the so-called "formation cycle" or after initial electrode expansion) to enhance the mechanical strength / integrity / stability of the electrode after initial expansion.
[0105] In some designs, the water-soluble copolymer binder may include at least one of the following components: vinyl acetate (or butyl, methyl, propyl, etc.), vinyl acrylate (or butyl, methyl, propyl, etc.), vinyl (or butyl, methyl, propyl, etc.) alcohol, vinyl acetate (or butyl, methyl, propyl, etc.)-acrylic, vinyl (or butyl, methyl, propyl, etc.) acrylate, styrene-acrylic, alginic acid (or a salt thereof, such as a salt of Na, K, Ca, Mg, Li, Sr, Cs, Ba, La, etc.), acrylic acid (or a salt thereof, such as a salt of Na, K, Ca, Mg, Li, Sr, Cs, Ba, La, etc.), vinyl (or butyl, methyl, propyl, etc.) siloxane (and other siloxanes), pyrrolidone, sterene, various sulfonic acid esters (e.g., styrene sulfonic acid esters, among others), various amines (including quaternary amines), various dicyandiamide resins, amidoamine, ethyleneimine, and diallyldimethylammonium chloride.
[0106] In some designs, the water-soluble copolymer binder may include cellulose. In some designs, the cellulose-containing binder may include nanocellulose (nanofibers). In some designs, the nanocellulose may include branched or dendritic cellulose nanofibers. In some designs, the nanocellulose-containing binder may include at least one additional binder component (e.g., CMC) with strong adhesive properties for superior performance in the blend anode. In some designs, the nanocellulose-containing binder may be water-soluble.
[0107] In some designs, the copolymer binder can include poly(acrylamide) (i.e., includes acrylamide (-CHCHCONH-) subunits). In some designs, the poly(acrylamide)-containing copolymer binder can be water-soluble. In some designs, the poly(acrylamide)-containing copolymer binder can also include acrylic acid, carboxylic acid, alginic acid, or metal salts thereof (e.g., salts of these acids such as Na, K, Ca, Mg, Li, Sr, Cs, Ba, La, etc.). These and other additives can be used to fine-tune the ionic properties of the polymer, its solubility, and interactions with both the solvent and the active (electrode) particles (e.g., to achieve slurry stability).
[0108] Some design examples include anion-conducting heterogeneous polymers (such as alkoxysilane / acrylates or epoxyalkoxysilanes), various anion-conducting interpenetrating polymer networks, various anion-conducting poly(ionic liquids) (crosslinked ionic liquids) or poly(acrylonitrile), various anion-conducting polyquaterniums, various anion-conducting salts including quaternary ammonium (e.g., benzyltrialkylammonium, tetraalkylammonium, trimethylammonium, dimethylammonium, diallyldimethylammonium, etc.), various anion-conducting copolymers containing ammonium groups, various anion-conducting copolymers containing norbornene, cycloalkenes (e.g., cyclooctene), methacrylates, butyl acrylates, biphenyls, bismuth ... Various anion-conducting copolymers containing arylbenzyl or poly(phenylene), various anion-conducting copolymers containing organic chlorine compounds (e.g., epichlorohydrin), various anion-conducting copolymers containing ethers, bicyclic amines (e.g., quinuclidine), various anion-conducting poly(ionic liquids) (crosslinked ionic liquids), various anion-conducting copolymers containing other amines (e.g., diamines, monoamines, such as ethylenediamine), various anion-conducting copolymers containing poly(etherimides), various polysaccharides (e.g., chitosan), xylylene, guanidine, and pyrrolidinium may be advantageously used as copolymer binders (or components of polymer / copolymer binder mixtures) for blend anodes in the context of one or more embodiments of the present disclosure. In some designs, a suitable copolymer binder may be cationic and highly charged.
[0109] In some designs, various cation-conducting polymers (including interpenetrating polymer networks) and cross-linked ionic liquids (e.g., about 10 -10 Ssm -1 A polymer having a cation conductivity of about 10 or more may be advantageously used in a blend anode as a binder or binder component in the context of one or more embodiments of the present disclosure. In some designs, the polymer advantageously has a medium to high conductivity (e.g., about 10) for Li ions (for Li or Li-ion batteries).-10 Ssm -1 or more, more preferably about 10 -6 Ssm -1 (or more).
[0110] In some designs, various electrically conductive polymers or copolymers (e.g., preferably about 10 -2 Ssm -1The above electrically conductive polymers, particularly those that are water-soluble (or at least processable in an aqueous electrode slurry), can be advantageously used as binders or binder components (e.g., binder mixture components or copolymer binder components) for blend anodes in the context of one or more embodiments of the present disclosure. In particular, sulfur (S)-containing polymers / copolymers that also contain aromatic rings can be advantageously utilized. In some examples, S can be present in the aromatic ring (e.g., as in poly(thiophene) (PT) or poly(3,4-ethylenedioxythiophene) (PEDOT)), while in other examples, S can be present outside the aromatic ring (e.g., as in poly(p-phenylene sulfide) (PPS)). In some design examples, suitable conductive polymers / copolymers can also contain nitrogen (N) as a heteroatom. The N atom may be present in an aromatic ring (such as in poly(pyrrole) (PPY), polycarbazole, polyindole, or polyazepine), or may be present outside the aromatic ring (such as in polyaniline (PANI)). Some conductive polymers may be free of heteroatoms (such as in poly(fluorene), polyphenylene, polypyrene, polyazulene, polynaphthalene, etc.). In some designs, the backbone may have double bonds (such as in poly(acetylene) (PAC) or poly(paraphenylene vinylene) (PPV)). In some designs, it may be advantageous for the polymer / copolymer binder to include an ionomer (such as in polyelectrolytes where ionic groups are covalently bonded to the polymer backbone, or in ionenes where the ionic groups are part of the actual polymer backbone). In some designs, it may be advantageous to use a polymer blend of two or more ionomers. In some designs, the ionomer can carry both opposite charges (e.g., one negative and the other positive). Examples of ionomers capable of carrying negative charges include, but are not limited to, various deprotonated compounds (e.g., when a portion of the sulfonyl groups are deprotonated, as in sulfonated polystyrene).Examples of ionomers capable of carrying a positive charge include, but are not limited to, various conjugated polymers such as PEDOT. An example of a suitable polymer mixture of two ionomers with opposite charges is poly(3,4-ethylenedioxythiophene) polystyrene sulfonate. In some designs, it may be advantageous to use a polymer or copolymer binder that contains both a conductive polymer and another polymer that provides other functionality (e.g., acting as an elastomer to significantly increase maximum binder elongation, strengthening bonding to the active material or current collector, or increasing solubility in water or other slurry solvents).
[0111] In some designs, the copolymer binder may advantageously include a halide anion (e.g., chloride anion, fluoride anion, bromide anion, etc.) for a blend anode. In some designs, the copolymer binder may advantageously include an ammonium cation (e.g., in addition to the halide anion, as in ammonium chloride). In some designs, the copolymer binder may advantageously include sulfur (S). In some designs, the copolymer binder may advantageously include an allyl group (e.g., in addition to the ammonium cation). For example, the copolymer binder may advantageously include diallyldimethylammonium chloride (DADMAC) or diallyldiethylammonium chloride (DADEAC). Other suitable examples of the copolymer binder component may include (but are not limited to) methylammonium chloride, N,N-diallyl-N-propylammonium chloride, methylammonium bromide, ethylammonium bromide, propylammonium bromide, butylammonium bromide, methylammonium fluoride, ethylammonium fluoride, propylammonium fluoride, butylammonium fluoride, to name a few.
[0112] In some designs, copolymer binders for blend anodes may contain both poly(acrylamide) and ammonium halide (e.g., ammonium chloride) within their structure. As one suitable example, poly(acrylamide-co-diallyldimethylammonium chloride) (PAMAC) may be advantageously used as the copolymer binder in the context of the present disclosure. In some designs, the PAMAC copolymer binder may further contain a minor amount (e.g., less than about 5-10 wt %) of acrylic acid, carboxylic acid, or alginic acid or a metal salt thereof (e.g., a salt of these acids with Na, K, Ca, Mg, Li, Sr, Cs, Ba, La, etc.).
[0113] The relative weight fraction of the binder in a blend anode depends on the properties of the active material components and their relative fractions. Excessive binder content in a blend anode can, for example, reduce the volumetric capacity of the electrode or reduce electrode porosity and increase tortuosity, thereby adversely affecting energy density, power density, or both. In some designs, excessive binder content and insufficient residual pore volume can also induce premature failure due to excessively increased resistance growth during cycling. Finally, a higher binder content can increase the total material cost. On the other hand, too little binder may not provide sufficient mechanical robustness to the blend anode, leading to premature electrode failure during cycling or, in some designs, delamination from the current collector. However, for many applications, a suitable binder fraction will range from about 0.5 wt. % to about 15 wt. % (not considering the weight of the current collector foil) of the blended anode (in some designs, from about 0.5 wt. % to about 2.0 wt. %, in other designs, from about 2.0 wt. % to about 6.0 wt. %, in other designs, from about 6.0 wt. % to about 8.0 wt. %, in other designs, from about 8.0 wt. % to about 10.0 wt. %, in other designs, from about 10.0 wt. % to about 12.0 wt. %, and in other designs, from about 12.0 wt. % to about 15.0 wt. %).
[0114] In some designs, carbon nanotubes (including multi-walled, double-walled, and single-walled), carbon nanofibers, and other one-dimensional (1D) carbon materials, exfoliated graphite, graphene, graphene oxide (including multi-walled, double-walled, and single-walled) and other two-dimensional (2D) carbon materials, carbon black or carbon onions, and other zero-dimensional (0D) carbon materials, as well as various dendritic (e.g., connected or branched) carbon particles, small graphite particles, and other three-dimensional (3D) structured carbon materials, can be effectively used as conductive carbon additives in blend anode configurations. In some designs, conductive oxides, carbides, or metals in the form of 0D, 1D, and 2D materials (e.g., nanoparticles, nanofibers, or nanoflakes) can be suitably utilized as conductive additives. In some designs, the conductive nanoparticles or nanofibers can be branched or dendritic. In some designs, the conductive additive and the active particles can have opposite charges. In some designs, the conductive additive and / or the active particles can have functional groups attached to their surfaces. In some designs, heating the electrode after casting or calendering can induce the formation of chemical bonds between the conductive additive and the active particles. While the optimal content can vary significantly between designs, some design blend anodes can contain about 0.01 wt % to about 6 wt % of conductive additive. In some designs, excessive conductive additive content in the anode can reduce volumetric capacity, increase pore tortuosity, or increase first-cycle loss, thereby adversely affecting energy density, power density, or both. Ultimately, higher conductive additive content can increase overall material costs. On the other hand, too little conductive additive can fail to provide sufficient electrical conductivity within the blend anode, reducing its mechanical stability and power rating, and in some designs, increasing electrode resistance. Thus, in some designs, it is generally desirable to reduce the amount of binder and conductive additive to a level where one or more other desired battery properties (e.g., sufficiently good mechanical stability, sufficiently low resistance, sufficiently high power, sufficiently good adhesion to current collector foil, etc.) are achieved for the desired application and application-specific specifications.
[0115] In some designs, it may be advantageous (e.g., for cell rate performance, stability, manufacturability, or other considerations) to chemically bond a conductive additive (e.g., carbon nanotubes, graphene ribbons, carbon flakes, carbon black, carbon fibers, metal nanofibers, metal flakes, or metal nanoparticles) to at least a portion (e.g., 2 to 100 wt.%) of the outer surface of the active material particles. In some designs, the conductive additive may be grown on the surface of the active material. In some designs, the growth of the conductive additive on the surface of the active material powder may be performed using a vapor deposition technique (e.g., CVD, including catalyst-assisted CVD). In some designs, the conductive additive may be chemically attached or grown on the surface of an intercalation-type (e.g., carbonaceous) active material. In some designs, the conductive additive may be chemically attached or grown on the surface of a conversion-type (e.g., Si-containing) active material.
[0116] In some designs, it may be advantageous to deposit (e.g., by slurry infiltration, casting, drying, and calendaring) at least a portion (e.g., 2 to 100 wt%) of the polymer or copolymer binder and / or at least a portion (e.g., 2 to 100 wt%) of the conductive additive on the surface of at least a portion (e.g., 2 to 100 wt%) of the active particles prior to blend electrode assembly. If the electrode is prepared from a slurry, it may be advantageous in some designs to deposit at least a portion (e.g., 2 to 100 wt%) of the polymer or copolymer binder and / or at least a portion (e.g., 2 to 100 wt%) of the conductive additive on the surface of at least a portion (e.g., 2 to 100 wt%) of the active particles prior to slurry mixing.
[0117] After calendering the electrode, a "springback" effect (expansion of the electrode to a certain level after initial compression) can occur. Different types of conductive additives and different amounts of conductive additives can affect the amount of springback. For example, carbon nanotubes or nanofibers used as a conductive additive will result in a greater amount of springback compared to a carbon black conductive additive. Similarly, in one example, a greater amount of nanotubes or nanofibers, or in some cases nanotubes and nanofibers with larger diameters and / or lengths, will result in a greater amount of springback. In some designs, different types of nanotubes and nanofibers (e.g., different microstructures, compositions, etc.) will result in different amounts of springback. In some designs, to mitigate or minimize the often undesirable effects of the "springback" effect while still taking advantage of the favorable electrode properties of blend anodes containing carbon nanotubes, some designs use a relatively small total amount in the blend anode (e.g., from about 0.01 wt. % to about 3.0 wt. %, in some designs from about 0.01 wt. % to about 0.1 wt. %, in other designs from about 0.1 wt. % to about 0.2 wt. %, in other designs, depending on the size and properties of the carbon nanotubes, the size, shape, and density of the active material particles in the blend anode, and the type of binder in the blend anode to achieve the most favorable properties. It may be advantageous to use carbon nanotubes of about 0.2 wt% to about 0.3 wt% in some designs, about 0.3 wt% to about 0.4 wt% in other designs, about 0.4 wt% to about 0.5 wt% in other designs, about 0.5 wt% to about 0.6 wt% in other designs, about 0.6 wt% to about 0.7 wt% in other designs, about 0.7 wt% to about 0.8 wt% in other designs, about 0.8 wt% to about 0.9 wt% in other designs, about 0.9 wt% to about 1.0 wt% in other designs, about 1.0 wt% to about 1.5 wt% in other designs, about 1.5 wt% to about 2.0 wt% in other designs, and about 2.0 wt% to about 3.0 wt% in other designs. Similarly, it may be advantageous in some designs to use carbon nanotubes of relatively small diameter (e.g., median diameter of individual tubes in the range of about 0.6 nm to about 6 nm).In some designs, when carbon nanotubes are used in combination with a carbon black conductive additive, it may be advantageous for the carbon black to comprise a majority (e.g., about 50.01% to 99.99% by weight, and in some designs, about 75% to about 99% by weight) of all conductive carbon additives in the blend anode.
[0118] Achieving certain mechanical properties of blend anode coatings enables their superior performance in batteries. For example, in some designs, it may be advantageous for the blend anode coating to exhibit a tensile strain to failure (or elongation to failure) that is comparable (within about 20%) to or significantly exceeds (e.g., about 20-500%) the total increase in anode coating thickness expected during battery use (e.g., when considering all cycles from the first to the last cycle). For example, if the blend anode coating thickness increases by, say, about 10% from cell assembly to the end of cell life, it may be advantageous in some designs for the blend anode to exhibit a tensile strain to failure of about 8% to about 60%. Note that, ideally, the relevant strain to failure is along an axis perpendicular to the plane of the current collector, and ideally should be measured when the electrode is immersed in electrolyte. However, in some designs, it may be easier to evaluate the strain to failure along an axis perpendicular to the plane of the current collector. Measurements can be difficult to make when the electrode is immersed in the exact same electrolyte and approximate electrolyte composition (e.g., determined by specifying the major solvent (e.g., about 20-100 wt. % of the total solvent in the electrolyte composition) and the approximate salt composition within about ±50%) that will be used in the battery construction. Thus, in some cases, the above-described measurement of strain to failure along an axis perpendicular to the plane of the current collector and at the approximate electrolyte composition (in some designs, no salt added to the solution) can be a sufficiently good approximation to be used in the construction of the anode coating. In fact, the coating may exhibit relatively isotropic mechanical properties in terms of strain to failure along different directions. In some designs, it may be successful to measure the strain to failure in the plane of the coating by applying standard tensile testing approaches to freestanding coatings in a dog-bone sample geometry. Overall, the relative thickness change (and consequently the desired strain to failure for the coating) depends on the properties and composition of the blend anode and the cell construction (e.g., pouch cell vs. cylindrical cell vs. coin cell, soft case vs. hard case, etc.).However, for most blend anodes, the preferred minimum range (for some designs) of strain to failure (as measured in a direction parallel to that of the current collector foil) in the blend anode can vary from about 5% to about 150% for electrolyte saturated (permeated with the appropriate electrolyte) coatings.
[0119] In some designs, it may be advantageous for the compressive yield strength of the cast blend anode coating (consisting of a mixture of active material, binder, and conductive additives) to be sufficiently low so that irreversible densification of the coating can be achieved by calendering without exceeding the fracture strength of the active material. In some designs, a compressive yield strength of about 600 MPa or less may be suitable. In some designs, a yield strength of about 300 MPa or less may be suitable. In some designs, a yield strength of about 150 MPa or less may be suitable.
[0120] In some designs, the coating is subjected to significant bending stresses during the folding and winding process while the blend anode is being assembled into a cell, which can result in delamination of the coating from the current collector. Therefore, it can be advantageous for the coating of the calendered blend anode to be sufficiently adhered to the current collector so that it can withstand a cylindrical mandrel bend test for mandrel diameters ranging from about 100 mm to about 2 mm.
[0121] In some designs, the adhesion strength of the blend anode coating can be advantageously evaluated after calendering using a 180-degree peel test. A peel test can be performed, for example, by adhering a 0.5-inch wide strip of 3M® 401M tape to the coating and measuring the average force required to peel a 20 mm long strip of the coating from the current collector at 2 mm / s. In some designs, it can be advantageous to produce and use such blend anodes in cell configurations that exhibit an average force in the range of about 0.01 N to about 50 N (in some designs, about 0.05 N to about 50 N; in some designs, more preferably, about 0.1 N to about 10 N) to ensure sufficiently strong adhesion of the coating to the current collector during cycling.
[0122] In some designs, it may be preferable for the maximum shear stress at the coating-current collector interface to be below the fatigue limit for the interface, or a sufficiently low fractional shear strength that fatigue failure does not occur before about 1,000-10,000 cycles.
[0123] A wide range of copper (Cu) foils are conventionally used as anode current collectors in low-potential anodes (such as those based on graphite or blend anodes). However, in the context of one or more embodiments of the present disclosure, some such current collectors may experience undesirable volume changes and, in some cases, may fail during cycling (particularly during the first so-called "forming" cycle) due to the volumetric nature of the high-capacity conversion anode particles adhering to the current collector. At the same time, in some designs, it may be undesirable for the current collector foil to expand significantly (e.g., by more than about 1-6% in each dimension) due to stresses in the electrode. Thus, in some designs, it may be advantageous to utilize a foil with higher hardness, higher modulus of elasticity, and higher fracture toughness than the typical Cu foil used in most commercially available cells. In some designs, a suitable average thickness of the metal (e.g., Cu) current collector foil may range from about 4 microns to about 18 microns (in some designs, from about 7 microns to about 11 microns).
[0124] In addition to pure Cu foils, other metal foils including metals such as nickel (Ni), titanium (Ti), iron (Fe), steel (including stainless steel), vanadium (V), their alloys, and other Cu-rich (e.g., about 85-99.8 atomic % Cu) alloys, as well as laminated metal foils including at least one nearly pure Cu (e.g., about 99.5-100 atomic % Cu) and at least one Cu-poor (e.g., about 0-99.5 atomic % Cu) layer, can be effectively utilized in some designs. In some designs, current collector foils for blend anodes can exhibit better mechanical properties (such as higher strength, higher fracture toughness, and higher resilience to creep and fatigue, to name a few) than those used in pure intercalation-type carbonaceous anodes.
[0125] These alternative metals may be more difficult and expensive to produce in thin foil form (e.g., about 5-18 μm). Furthermore, these alternative metals may exhibit lower electrical conductivity. For various reasons, these materials are not used in conventional commercial Li-ion battery cells as anode current collectors. However, in the context of one or more embodiments of the present disclosure, it may be advantageous in some designs for the blend anode current collector foil to contain Ni, Ti, Fe, or other metals or Cu alloys (rather than pure Cu) to achieve desired performance and mechanical stability. In some designs, this anode current collector foil may be thin (e.g., about 5-18 μm) and contain about 5-100 wt. % Ti, Ni, or Fe. In some designs, it may also be advantageous to produce a copper (Cu) coating or carbon-based foil (or mesh or foam) current collector on a thin (e.g., in the range of about 0.01-3 μm) Ni, Ti, or Fe. In some designs, Cu deposition may be performed by electroplating, sputtering, or other suitable methods. In some designs, the Cu layer may provide the following benefits, among others: (i) advantageously improved adhesion to the electrode, (ii) advantageously improved electrical conductivity, and (iii) advantageously improved tab weldability. In some designs, the strength and mechanical properties of the Cu foil may be enhanced by utilizing a Cu alloy containing greater than about 2 wt. % Ni, Fe, Ti, Mg, or other suitable elements (preferably those that exhibit minimal alloying with Li at low electrochemical potentials).
[0126] Conventional cells typically use a solid metal foil (e.g., Cu foil) as the anode current collector and a solid metal foil (e.g., Al foil) as the cathode current collector. Meanwhile, in some designs, blend anodes according to embodiments of the present disclosure may be substantially thinner than pure graphite (or carbon-based) anodes due to the blend anode's higher volumetric capacity (e.g., due to the presence of high-capacity converted active material). Furthermore, due to volume changes in the converted active material during cycling, the blend anode may, in some designs, exhibit poor adhesion to the current collector foil during cycling. If the battery cell is mechanically damaged (e.g., distorted, dented, or pierced), the Cu foil current collector may come into direct contact with the cathode current collector (e.g., Al foil). As a result, an internal short circuit can quickly dissipate a significant amount of cell energy, potentially triggering a fire or even an explosion. In some designs, to mitigate potential damage in cells with conversion or blend anodes, it may be beneficial for the current collector to have a multilayer (e.g., sandwich-like) structure in which an insulating polymer layer (porous or dense, with or without mechanically reinforcing fibers, nanofibers, flakes, or nanoflakes) is encapsulated within an electrically conductive metal surface layer (e.g., Cu or other metal for the anode current collector and / or Al or other metal for the cathode current collector, as described above). In this case, rapid heating of the current collector may induce polymer melting and current collector fracture (e.g., similar to welding), thereby reducing or minimizing the total energy released and thereby reducing or minimizing potential damage. In some designs, it may be beneficial for the metal layer to exhibit an average thickness in the range of about 0.1 micron to about 4.0 microns. In some designs, it may be beneficial for the polymer layer to exhibit an average thickness in the range of about 2.0 microns to about 12.0 microns. In some designs, the polymer in the polymer layer may be a thermoplastic. In some designs, it may be beneficial for the thermoplastic polymer in the polymer layer to exhibit a relatively low melting temperature (eg, about 100 to about 200° C.).
[0127] In some designs, the strength and mechanical properties of the anode current collector, as well as its adhesion to the electrode, can be enhanced by incorporating carbon, metal (e.g., metal alloys containing Ni, Fe, Ti, and other metals, as well as Cu), ceramic (e.g., oxides, nitrides, carbides, etc.) polymer (nano)fibers, nanotubes, nanowires, flakes, nanoflakes, or various dendritic or branched particles into the bulk of the current collector, or by depositing the fibers, nanotubes, nanowires, flakes, nanoflakes, or various dendritic or branched particles on the surface of the anode current collector. In some designs, the average thickness of the composite current collector can range from about 3 to about 25 microns. Smaller thicknesses may not be sufficient to provide the required mechanical strength or conductivity for certain applications, while larger thicknesses may reduce the volumetric or gravimetric energy density of the cell or increase its cost to levels that are impractical for certain applications.
[0128] Most commercially available foils (e.g., Cu foils) used in certain commercial cells (e.g., with graphite anodes) are typically produced by electroplating. They may exhibit grains oriented perpendicular to the foil orientation (sometimes referred to as "columnar grains") and / or exhibit limited maximum elongation and fracture toughness. However, in some designs, foils produced by rolling (e.g., calendering) may be advantageous for use in at least some of the blend anodes having volume-changing conversion-type active material particles because such particles exhibit higher strength, higher fracture toughness, and better fatigue resistance. In some designs, the foils may advantageously exhibit grains (e.g., crystal grains) that are flattened (or elongated) in a direction parallel to the plane (or surface) of the foil. In some designs, the average aspect ratio of the grains may advantageously be greater than 2.0 (e.g., in the range of about 2.0 to about 1000.0). In some designs, the average grain size (e.g., length) on the surface of the foil can range from about 0.2 microns to about 4000 microns. In some designs, rolled foil (also referred to as "roll-thinned metal foil") may be annealed before use to reduce the amount of residual internal stress, increase the average grain size, and / or increase the ductility of the foil. However, rolled foil can suffer from low surface roughness, which can result in poor adhesion to the electrode. In some designs, it may be advantageous to use rolled foil with a top / surface layer. In some designs, the layer may have a similar or identical metal composition to the bulk / center portion of the rolled foil. In some designs, this top / surface layer may be deposited on the rolled foil by electroplating or other means, or may be created by etching, laser micromachining, mechanical means, or other means to increase the surface roughness to increase adhesion to the electrode surface. In some designs, the desired thickness range for the layer (e.g., for each side of the foil) can range from about 50 nm to about 7 microns.
[0129] In some designs, it may be preferable for the current collector foil used in the blend anode to exhibit a specific tensile strength in the range of about 400 MPa to about 2000 MPa (in some designs, about 500 MPa to about 1000 MPa).
[0130] Electrolytes for use in high-performance Li-ion batteries with blend anodes often do not include simple mixtures of electrolytes used in Li-ion batteries with pure intercalation (e.g., graphite) and pure conversion (e.g., Si-containing) anodes, as opposed to rules of mixtures that can be used in some designs to identify suitable compositions and properties for blend anodes. This is because some electrolyte components used in pure conversion (e.g., Si-containing) anodes (e.g., propylene carbonate, PC solvent) can lead to premature failure of graphite-containing anodes (e.g., due to co-intercalation of solvent molecules into the graphite-based structure). Similarly, some electrolyte compositions that form a stable solid electrolyte interface (SEI) layer on the surface of graphite anodes may, in some designs, be unable to form a stable SEI on the surface of conversion (e.g., Si-containing) anode particles.
[0131] It should be noted that in some designs, different electrolyte compositions may provide optimal performance for cells with the same blend anode and different cathodes (e.g., for various intercalation types operating at different voltages, including high-pressure (charged above about 4.35 V vs. Li / Li+, and in some designs above about 4.45 V vs. Li / Li+) intercalation cathodes, low-pressure (charged below about 4.0 V vs. Li / Li+) intercalation cathodes, medium-pressure (between about 4.0 and 4.35 V vs. Li / Li+) intercalation cathodes, S-containing conversion cathodes, F-containing conversion cathodes, etc.).
[0132] Conventional electrolytes for Li-ion batteries with intercalation cathodes and pure intercalation anodes or blended anodes generally consist of a 0.8-1.2 M solution of a single Li salt (such as LiPF6) in a mixture of carbonate solvents with 1-2 wt% of other organic additives. Common organic additives can include nitriles, esters, sulfones, sulfoxides, phosphite-based solvents, silicone-based solvents, ethers, etc. The additive solvents may also be modified (e.g., sulfurized or fluorinated).
[0133] In some designs, other Li salts (not just LiPF) or salt mixtures may be suitable for use in Li-ion cells with blended anodes (in some designs, in combination with LiPF salts). Examples of these salts include, but are not limited to, lithium tetrafluoroborate (LiBF), lithium perchlorate (LiClO), lithium hexafluoroantimonate (LiSbF), lithium hexafluorosilicate (LiSiF), lithium hexafluoroaluminate (LiAlF), lithium bis(oxalato)borate (LiB(C0)), lithium difluoro(oxalato)borate (LiBF(C0)), various lithium imides (SOFN), and lithium tetrafluoroborate (LiBF). - (Li + )SO2F(LiFSI), CF3SO2N - (Li + )SO2CF3, CF3CF2SO2N - (Li + )SO2CF3, CF3CF2SO2N - (Li + )SO2CF2CF3, CF3SO2N - (Li + )SO2CF2OCF3, CF3OCF2SO2N - (Li + )SO2CF2OCF3, C6F5SO2N - (Li + )SO2CF3, C6F5SO2N - (Li + )SO2C6F5 or CF3SO2N - (Li +)SO2PhCF3, etc. In some designs, it may be particularly advantageous for the salt to be free of a significant fraction of HF. In some designs, it may be advantageous for the salt to have a pH in the range of about 6.0 to about 10.0 (in some designs, about 7.0 to about 9.0).
[0134] In some designs, the salts may be selected such that the Li salts (or their solvated counterparts) form a eutectic system (with reduced melting points). In one example, multiple Li imide salts (e.g., SOFN - (Li + )SO2F and CF3SO2N - (Li + )SO2CF3 salt mixture, CF3SO2N - (Li + )SO2CF3 and CF3CF2SO2N - (Li + )SO2CF3 mixture, or CF3SO2N - (Li + )SO2CF3 and CF3CF2SO2N - (Li + )SO2CF2CF3) may comprise the system. In some designs, the salts and their relative fractions may be selected to induce freezing point depression. In some designs, the most suitable relative fractions of salts may be selected to minimize the freezing point (through this freezing point depression). In some designs, other Li and non-Li salts may be added in small amounts (e.g., from about 0.001 M to about 0.500 M) to further depress the electrolyte melting point, improve SEI properties, and reduce dissolution of the active material or its components. In some designs, the non-Li salt may be a salt of Mg, K, Ca, or Na. In some designs, the non-Li salt may be a salt of a rare earth metal (e.g., La).
[0135] In some designs utilizing two or more salts (e.g., three salts, four salts, or five salts), it may be advantageous (in the case of Li or Li-ion secondary batteries) for at least one of the salts to comprise LiPF. In some designs, it may be even more advantageous for one other salt to also be a Li salt. It may even be even more advantageous for at least one other (non-LiPF) salt to become electrochemically unstable in the electrolyte (e.g., decompose at the anode) in response to a decrease in anode potential below about 0.3-2.3 V vs. Li / Li+. In some designs, it may be advantageous for salt decomposition to occur above about 0.3 V vs. Li / Li+, more preferably above about 1 V vs. Li / Li+ (and in some designs, more preferably above about 1.5 V vs. Li / Li+). It may be further advantageous for the non-LiPF salt in the electrolyte to induce or catalyze electrolyte reduction at about 0.3 V or greater vs. Li / Li+, more preferably about 1 V or greater vs. Li / Li+ (and in some designs, more preferably about 1.5 V or greater vs. Li / Li+, or even about 2.0 V or greater vs. Li / Li+). It may be further advantageous for the (e.g., partially decomposed) non-LiPF salt in the electrolyte to react with at least a portion of the solvent molecules in the electrolyte to form oligomers. In some designs, the non-LiPF salt may be a LiFSI salt. Furthermore, for electrolytes containing both LiPF and LiFSI salts, the mole fraction ratio of LiPF to LiFSI salts may preferably range from about 100:1 to about 1:1. The exact optimal ratio may depend on the electrode characteristics, the electrolyte solvent blending method used, and the cycling regime (temperature, cell voltage range, etc.). In some designs, the non-LiPF salt may be a lithium fluorophosphate (LiPO2F2 or LFO). Furthermore, for electrolytes containing both LiPF and LiFSI salts, the mole fraction ratio of LiPF to LFO salts may preferably range from about 100:1 to about 1:1. The exact optimum ratio may depend on the electrode characteristics, the electrolyte solvent blending method utilized, and the cycling regime (temperature, cell voltage range, etc.).
[0136] In some designs of cells including blended anodes (or, more broadly, anodes including conversion (including alloyed) type active materials), it may be advantageous to have a total salt concentration in the electrolyte ranging from about 0.8M to about 2.4M (about 0.8M to about 1.2M in some designs, about 1.2M to about 1.4M in other designs, about 1.4M to about 1.6M in other designs, about 1.6M to about 1.8M in other designs, about 1.8M to about 2.0M in other designs, about 2.0M to about 2.2M in other designs, and about 2.2M to about 2.4M in other designs), while utilizing a minor fraction of at least one at least partially fluorinated solvent in the electrolyte mixture, as a fraction of total solvents in the electrolyte, ranging from about 1% to about 30% by volume (about 1% to about 12% by volume in some designs, and about 12% to about 30% by volume in other designs). It may further be advantageous for the electrolyte solvent mixture to contain both linear and cyclic molecules, and in some designs, at least some of the linear molecules may advantageously be branched (may have one or more branches).
[0137] In some designs, it may be preferred for the electrolyte to include ethylene carbonate (EC), a cyclic molecular co-solvent, in the electrolyte (e.g., in a range of about 1% to about 30% by volume as a fraction of the total solvent in the electrolyte, from about 1% to about 3% by volume in some designs, from about 3% to about 6% by volume in other designs, from about 6% to about 10% by volume in other designs, from about 10% to about 15% by volume in other designs, from about 15% to about 20% by volume in other designs, from about 20% to about 25% by volume in other designs, from about 25% to about 30% by volume in other designs, from about 30% to about 35% by volume in other designs, and from about 35% to about 40% by volume in other designs). In some designs, it may be preferable for the electrolyte to include propylene carbonate (PC), a cyclic molecular co-solvent, in the electrolyte (e.g., in a range of about 1% to about 30% by volume as a fraction of the total solvent in the electrolyte, from about 1% to about 3% by volume in some designs, from about 3% to about 6% by volume in other designs, from about 6% to about 10% by volume in other designs, from about 10% to about 15% by volume in other designs, from about 15% to about 20% by volume in other designs, from about 20% to about 25% by volume in other designs, from about 25% to about 30% by volume in other designs, from about 30% to about 35% by volume in other designs, and from about 35% to about 40% by volume in other designs). In some designs, it may be advantageous for the electrolyte to include vinylene carbonate (VC) or vinyl ethylene carbonate (VEC) among the cyclic molecular cosolvents in the electrolyte (e.g., in a range of about 0.1% to about 12% by volume as a fraction of the total solvent in the electrolyte, from about 0.1% to about 1% by volume in some designs, from about 1% to about 2% by volume in other designs, from about 2% to about 3% by volume in other designs, from about 3% to about 4% by volume in other designs, from about 4% to about 5% by volume in other designs, from about 5% to about 6% by volume in other designs, from about 6% to about 7% by volume in other designs, from about 7% to about 8% by volume in other designs, and from about 8% to about 12% by volume in other designs). In some designs, it may be advantageous for at least one of the cyclic molecules to include a fluorine atom.In some designs, it may be advantageous for the electrolyte to include a fluoroethylene carbonate (FEC) co-solvent in the electrolyte (e.g., in a range of about 0.1% to about 12% by volume as a fraction of the total solvents in the electrolyte, from about 0.1% to about 1% by volume in some designs, from about 1% to about 2% by volume in other designs, from about 2% to about 3% by volume in other designs, from about 3% to about 4% by volume in other designs, from about 4% to about 5% by volume in other designs, from about 5% to about 6% by volume in other designs, from about 6% to about 7% by volume in other designs, from about 7% to about 8% by volume in other designs, and from about 8% to about 12% by volume in other designs). In some designs, it may be advantageous for the total fraction of all cyclic co-solvents in the electrolyte to comprise about 10% to about 40% by volume of the total solvents in the electrolyte.
[0138] In some designs, it may be preferable for the electrolyte to contain a branched analog of EC or PC (e.g., in a range of about 1% to about 30% by volume as a fraction of the total solvent in the electrolyte). Examples of branched analogs of EC and PC that may be used include, but are not limited to, 4,5-dimethyl-1,3-dioxolan-2-one, 4,4,5-trimethyl-1,3-dioxolan-2-one, 4,4-dimethyl-1,3-dioxolan-2-one, 4-ethyl-1,3-dioxolan-2-one, 4-propyl-1,3-dioxolan-2-one, and 4-isopropyl-1,3-dioxolan-2-one.
[0139] In some designs, it may be preferred for the electrolyte to include one or more ester co-solvents in the electrolyte (e.g., in a total range of about 20% to about 90% by volume as a fraction of the total solvent in the electrolyte, from about 20% to about 40% by volume in some designs, from about 40% to about 60% by volume in other designs, from about 60% to about 70% by volume in other designs, from about 70% to about 80% by volume in other designs, and from about 80% to about 90% by volume in other designs).
[0140] In some designs, it may be preferred for the electrolyte to include one or more branched ester co-solvents in the electrolyte (e.g., in a total range of about 20% to about 90% by volume as a fraction of the total solvent in the electrolyte, from about 20% to about 40% by volume in some designs, from about 40% to about 60% by volume in other designs, from about 60% to about 70% by volume in other designs, from about 70% to about 80% by volume in other designs, and from about 80% to about 90% by volume in other designs).
[0141] In some designs, it may be preferred for the electrolyte to include one or more branched carbonate co-solvents in the electrolyte (e.g., in a total range of about 5% to about 60% by volume as a fraction of the total solvent in the electrolyte, from about 5% to about 10% by volume in some designs, from about 10% to about 20% by volume in other designs, from about 20% to about 30% by volume in other designs, from about 30% to about 40% by volume in other designs, and from about 40% to about 60% by volume in other designs).
[0142] In some designs, it may be advantageous for at least one of the linear (or branched) molecular cosolvents to contain one, two, or more fluorine atoms (per molecule).In some designs, it may be advantageous for at least one of the linear (or branched) molecular cosolvents to contain one, two, or more nitrogen atoms (per molecule).
[0143] The following electrolyte compositions may be useful for use in Li and Li-ion cells with blended anodes. These electrolyte compositions may include one or more of the following components: (a) low melting point (LMP) solvents or solvent mixtures, (b) normal melting point (RMP) solvents or solvent mixtures, (c) additive (ADD) solvents or solvent mixtures (e.g., added to improve anode-electrolyte interfacial properties, improve cathode-electrolyte interfacial properties, stabilize Li salts, or provide other useful functionality), (d) main (MN) Li salts or Li salt mixtures, (e) additive (ADD) salts or salt mixtures (not necessarily Li-based) (e.g., added to improve anode-electrolyte interfacial properties, improve cathode-electrolyte interfacial properties, stabilize Li salts, or provide other useful functionality), and (f) other functional additives (OFADDs) (e.g., added to enhance cell safety). It should be noted that the LMP solvent or LMP solvent mixture preferably contributes from about 10 to about 95 vol% of the total solvent volume in the electrolyte. (For cells with high capacity nanostructured or blended anodes, more suitable volume fractions of LMP solvent can range from about 20 vol% to about 90 vol%, in some designs from about 20 vol% to about 40 vol%, in other designs from about 40 vol% to about 60 vol%, in other designs from about 60 vol% to about 75 vol%, and in other designs from about 75 vol% to about 90 vol%.) The RMP solvent or RMP solvent mixture preferably contributes about 5 to about 90% by volume of the total solvent volume in the electrolyte (about 5% to about 10% by volume in some designs, about 10% to about 15% by volume in other designs, about 15% to about 20% by volume in other designs, about 20% to about 25% by volume in other designs, about 25% to about 30% by volume in other designs, about 30% to about 40% by volume in other designs, and about 40% to about 90% by volume in other designs). The ADD solvent or solvent mixture preferably contributes about 0 to about 6% by volume of the total solvent volume in the electrolyte, and about 0 to 12% by volume in some designs.The particular values of the optimum volume fractions of the LMP, RMP, and ADD solvent or solvent mixture for a particular application may depend on, among other factors, the cell operating potential, cell operating (or cell storage) temperature, areal capacity loading, electrode thickness and tortuosity, and desired charge and discharge rates for the cell in a given application.
[0144] For example, examples of suitable esters for use as LMP solvents or co-solvents include, but are not limited to, various formate esters (e.g., methyl formate, ethyl formate, propyl formate, butyl formate, amyl formate, hexyl formate, heptyl formate, etc.), various acetate esters (e.g., methyl acetate, ethyl acetate, propyl acetate, butyl acetate, amyl acetate, hexyl acetate, heptyl acetate, etc.), various propionate esters (e.g., methyl propionate, ethyl propionate, propionate, etc.), and the like. butyl propionate, amyl propionate, hexyl propionate, heptyl propionate, etc.), various butyrate esters (e.g., methyl butyrate, ethyl butyrate, propyl butyrate, butyl butyrate, amyl butyrate, hexyl butyrate, heptyl butyrate, etc.), various valerate esters (e.g., methyl valerate, ethyl valerate, propyl valerate, butyl valerate, amyl valerate, hexyl valerate, heptyl valerate, etc.), various caproate esters (e.g., methyl caproate, ethyl caproate, propyl caproate, capron butyl caprate, amyl caproate, hexyl caprate, heptyl caprate, etc.), various heptanoate esters (e.g., methyl heptanoate, ethyl heptanoate, propyl heptanoate, butyl heptanoate, amyl heptanoate, hexyl heptanoate, heptyl heptanoate, etc.), various caprylate esters (e.g., methyl caprylate, ethyl caprylate, propyl caprylate, butyl caprylate, amyl caprylate, hexyl caprylate, heptyl caprylate, etc.), various nonanoate esters (e.g., nonane decanoate (e.g., methyl decanoate, ethyl nonanoate, propyl nonanoate, butyl nonanoate, amyl nonanoate, hexyl nonanoate, heptyl nonanoate, etc.), various decanoic acid esters (e.g., methyl decanoate, ethyl decanoate, propyl decanoate, butyl decanoate, amyl decanoate, hexyl decanoate, heptyl decanoate, etc.), methyl 2-methylpropionate, methyl 2,2-dimethylpropionate (also known as methyl trimethylacetate), methyl 2-methylbutyrate, ethyl 2-methylpropionate (also known as ethyl isobutyrate), 2,Ethyl 2-dimethylpropionate (also called ethyl trimethylacetate), ethyl 2-methylbutyrate, methyl 3-methylbutyrate (also called methyl isovalerate), ethyl 3-methylbutyrate (also called ethyl isovalerate), 2-fluoro-2-methylpropionic acid ester, methyl 2-fluoropropionate, methyl 2-methyl-3-cyanopropionate, 2,2,2-trifluoroethyl isobutyrate, 2-cyanoethyl isobutyrate, 2,5-dicyanopentyl isobutyrate, 2-(2,2)-isobutyrate -dioxide-3H-1,2-oxathiol-4-yl)ethyl isobutyrate, 4-(methylsulfonyl)benzyl isobutyrate, 2-((difluorophosphoryl)oxy)ethyl isobutyrate, 2-((1,3,2-dioxaphospholan-2-yl)oxy)ethyl isobutyrate, 2-((trimethoxysilyl)oxy)ethyl isobutyrate, 2-(azidomethoxy)ethyl pivalate, allyl isobutyrate, but-2-yn-1-yl propionate, and fluorinated versions of the above esters.
[0145] Examples of solvents suitable for use as RMP solvents in the electrolyte (or for making RMP solvent mixtures in the electrolyte) include various carbonates (fluorinated acyclic carbonates can be particularly advantageous for use in cells with high-pressure cathodes), various sulfonic acids (e.g., dimethyl sulfone, ethyl methyl sulfone, etc.) and various sulfoxides, various lactones, various phosphorous acid solvents (e.g., dimethyl methylphosphonate, triphenyl phosphate, various linear and cyclic phosphorous acid solvents such as 2-fluoro-1,3,2-dioxaphospholane 2-oxide, (2,2,2-trifluoroethoxy)-1,3,2-dioxaphospholane 2-oxide, etc.), and various carboxylic acid solvents such as carboxylic acid esters. RMP solvents may include phosphonates and phosphates, various silicone-based solvents, various high-melting esters (e.g., esters with melting points above about -50°C), various ethers (e.g., dioxolane, monoglyme, diglyme, triglyme, tetraglyme, and polyethylene oxide), various cyclic ester-based molecules (e.g., butyrolactones and valerolactones), various dinitriles (e.g., succinonitrile, adiponitrile, and glutaronitrile), and various ionic liquids (e.g., imidazoliums, pyrrolidiniums, and piperidiniums may be particularly useful in cells with high-pressure cathodes). RMP solvents may be fluorinated (fully or partially). The most widely used fluorinated solvent (in Li-ion batteries) is fluoroethylene carbonate (FEC). Although FEC helps form a more stable (highly crosslinked compared to ethylene carbonate EC) SEI, its excessive use (e.g., greater than about 6-12% by volume) can also result in reduced cell performance, particularly at high temperatures and / or in cells with high-pressure cathodes operating above about 4.2 V vs. Li / Li+. Examples of solvents suitable for use as ADD solvents in the electrolyte (or for making ADD solvent mixtures in the electrolyte) can include, among others, various carbonates (including fluorinated carbonates), various sulfones (including fluorinated), various sulfoxides (including fluorinated), various lactones (including fluorinated), various phosphorus-based solvents (including fluorinated), various silicon-based solvents (including fluorinated), various ethers (including fluorinated), various nitriles and dinitriles.Although nitriles and dinitriles have problems with undesirable SEI formation in the anode, in small amounts (e.g., in some cases about 10 vol. % or less, in some cases about 5 vol. % or less, in some cases about 2 vol. % or less), their application in the electrolyte mixture can improve electrolyte conductivity and cell performance, especially when high-voltage cathodes are utilized. In some cases (e.g., when a high (e.g., about 20 vol. % or more) content of so-called "SEI formers" is utilized in the electrolyte), nitriles and dinitriles can also be components of the LMP solvent mixture.
[0146] As used herein, LMP refers to a melting point (of a solvent or solvent mixture) that is generally below a threshold value (e.g., below minus 60°C), such as, for example, in the range of about minus 150°C to about minus 60°C. As used herein, RMP refers to a melting point (of a solvent or solvent mixture) that is generally above a threshold value (e.g., above minus 60°C), such as, for example, in the range of about minus 60°C to about plus 30°C. In further examples, LMP can refer to a melting point (of a solvent or solvent mixture) in a narrower range, such as from about minus 140°C to about minus 70°C, or from about minus 120°C to about minus 80°C.
[0147] In one or more embodiments of the present disclosure, it may be further advantageous for the LMP solvent (or at least one major component of the LMP solvent mixture) in the electrolyte to exhibit a boiling point above about +50°C (more preferably above about +70°C, and even more preferably above about +80°C).
[0148] In some designs, various cyclic, linear, or branched esters (e.g., γ-valerolactone, γ-methylene-γ-butyrolactone, γ-hexalactone, α-angelicalactone, α-methylene-γ-butyrolactone, ε-caprolactone, 5,6-dihydro-2H-pyran-2-one, γ-butyrolactone, δ-hexalactone, α-methyl-γ-butyrolactone, phthalide, γ-caprolactone, ethyl propionate, propyl acetate, methyl formate, ethyl acetate, propyl propionate, methyl propionate, ethyl propionate, valeric acid Methyl, Methyl butyrate, Ethyl butyrate, Butyl valerate, Butyl butyrate, Propyl propionate, Methyl 2-methylpropionate, Methyl 2,2-dimethylpropionate (also called methyl isobutyrate), Methyl 2-methylbutyrate, Ethyl 2-methylpropionate (also called ethyl isobutyrate), Ethyl 2,2-dimethylpropionate, Ethyl 2-methylbutyrate, Methyl 2-fluoro-2-methylpropionate, Methyl 2-fluoropropionate, Methyl 2-methyl-3-cyanopropionate, 2,2,2-trifluoroethyl isobutyrate, Isobutyrate-2 -cyanoethyl, 2,5-dicyanopentyl isobutyrate, 2-(2,2-dioxido-3H-1,2-oxathiol-4-yl)ethyl isobutyrate, 4-(methylsulfonyl)benzyl isobutyrate, 2-((difluorophosphoryl)oxy)ethyl isobutyrate, 2-((1,3,2-dioxaphospholan-2-yl)oxy)ethyl isobutyrate, 2-((trimethoxysilyl)oxy)ethyl isobutyrate, 2-(azidomethoxy)ethyl pivalate, allyl isobutyrate, but-2-yn-1-yl propionate, etc. (some design examples) In some designs, there are no functional groups, and in some designs, there are additional functional groups (e.g., halogens, alcohols, alkanes, alkenes, alkynes, ketones, aldehydes, ethers, amines, amides, imides, nitriles, sulfonyl groups, carboxylic acids, phosphate esters, etc.), various cyclic, linear or branched ethers (e.g., tetrahydrofuran, tetrahydropyran, furan, 2-methyltetrahydrofuran, 2-ethyltetrahydrofuran, 4-methylpyran, pyran, 12-crown-4, 15-crown-5, 18-crown-6, 4-methyl-1,3-Dioxane, dimethyl ether, methyl t-butyl ether, diethyl ether, methoxyethane, dioxane, dioxolane, monoglyme, diglyme, triglyme, tetraglyme, methyl tert-butyl ether (MTBE), also known as tert-butyl methyl ether, isobutyl methyl ether, 1-methoxy-2-methylpropane, ethyl tert-butyl ether (ETBE), tert-amyl methyl ether (TAME), diisopropyl ether, propyl tert-butyl ether, 1-methylethyl 2-methylpropyl ether, 2,2-dimethylpropyl ethyl ether, isobutyropropyl ether, etc. (In some designs, they have no functional groups, and in some designs, they have additional functional groups (e.g., halogens) , alcohols, alkanes, alkenes, alkynes, ketones, aldehydes, ethers, amines, amides, imides, nitriles, sulfonyl, carboxylic acids, phosphate esters, etc.), various anhydrides (e.g., glutaric anhydride, succinic anhydride, maleic anhydride, phthalic anhydride, cyclobutane-1,2,3,4-tetracarboxylic dianhydride, butyric anhydride, isobutyric anhydride, etc.) (in some designs, unfunctionalized, in some designs, additional functional groups (e.g., halogens, alcohols, alkanes, alkenes, alkynes, ketones, aldehydes, ethers, amines, amides, imides, nitriles, sulfonyl, carboxylic acids, phosphate esters, etc.), as well as fluorinated versions of the above solvents and mixtures thereof, can be advantageously utilized as LMP solvents or co-solvents in LMP mixtures.
[0149] In some designs, adding different functional groups to selected electrolyte solvents (e.g., anhydrides, ethers, esters, etc., to at least a portion of the solvent in an LMP or LMP mixture, or to at least a portion of the solvent in an RMP or RMP mixture) can provide various advantageous effects in specific applications. For example, adding an electron-donating material (e.g., alkane, methoxy, amine, etc.) can lower the reduction potential (i.e., make reduction more difficult), which can be advantageous for a particular solvent whose reduction needs to be avoided or minimized (e.g., when the solvent is not used to form an SEI but is added to maintain high ionic conductivity within the electrode pores at cell operating temperatures). In other examples, adding an electron-withdrawing material (e.g., fluorine, ester, nitro group, etc.) can increase the solvent reduction potential (make reduction easier), which can be advantageous when the solvent is used as a component in stable SEI formation. In one example, forming the SEI at a high potential (before other electrolyte solvent components are reduced) can prevent the undesired reduction of other solvents at the electrode surface (e.g., solvents that form less stable SEIs, less ionically conductive SEIs, or SEIs with other less favorable characteristics). Furthermore, the solvents can provide a higher oxidation potential (which can be advantageous for maintaining improved stability, reducing leakage rates, etc.) when the cathode is exposed to high electrode potentials (e.g., above about 4.4 V vs. Li / Li+).
[0150] For electron-withdrawing materials, the replacement of select hydrogen atoms in the solvent or cosolvent with fluorine atoms (e.g., by using various fluorination reactions or other mechanisms) can be particularly advantageous in some designs. Specifically, electrolyte solvents / cosolvents (e.g., LMP and / or RMP electrolyte solvent components) that already function reasonably well in their applications (e.g., form a somewhat stable SEI layer) can additionally benefit (e.g., exhibit increased cycling stability or other advantages) from at least partial fluorination, particularly when a conversion version with a blend anode is utilized in a cell configuration. This reaction can increase the SEI formation potential during cycling (e.g., by enhancing the stability of a protective anode SEI or cathode SEI layer) and enhance the electrochemical stability of the electrode. Suitable examples include various fluorinated esters, various fluorinated ethers, various fluorinated anhydrides in the case of LMP components, and various other fluorinated solvents (including carbonates, nitriles, sulfones, larger esters, etc.) in the case of RMP components. It should be understood that the optimal fluorinated or fluorinated solvent content may vary from application to application. For example, excessive fluorinated or heavy use of fluorinated solvents may be undesirable in some applications (e.g., where the battery cathode may be exposed to high temperatures (e.g., above about 40°C) and high operating potentials (e.g., above about 4.4 V vs. Li / Li+). Furthermore, excessive fluorinated or heavy use of fluorinated solvents may reduce electrolyte wetting of the separator or portions of the electrode, thus reducing capacity utilization and rate capability, especially at lower temperatures. The optimal fluorinated solvent content may depend on the cell operation and the chemistry and properties of the electrode and separator surfaces.
[0151] In some designs, the use of solvents (cosolvents) (e.g., as components of LMP or RMP electrolyte solvent components) that exhibit double bonds in their structure (e.g., one, zero, or more double bonds per solvent molecule) or other opportunities for polymer formation in response to chemical or electrochemical reactions can be advantageous for the formation of a more stable SEI (e.g., by alkene polymerization). Solvent molecules containing both double bonds and fluorine can be particularly promising for forming SEIs with favorable characteristics (e.g., improved stability, etc.). Similarly, solvents (cosolvents) that can undergo ring-opening polymerization (e.g., in solvents with alkenes or various heteroatom-containing ring structures, such as propane sulfone) can also be advantageously utilized as electrolyte components in some designs due to their ability to form a more stable SEI. Examples of suitable double bond molecules may include vinylene carbonate, maleic anhydride, tetrachloroethylene, trichloroethylene, cyclohex-2-en-1-one, 5,6-dihydro-2H-pyran-2-one, cyclohexa-3,5-diene-1,2-dione, cyclopenta-2,4-dien-1-one, furan-2(5H)-one, diallyl carbonate, methyl allyl carbonate, vinyl acetate, vinyl propionate, vinyl butyrate, vinyl isobutyrate, vinyl trimethyl acetate, vinyl isovalerate, allyl acetate, allyl propionate, allyl butyrate, allyl isobutyrate, trimethyl allyl acetate, isovaleryl, methyl acrylate, methyl methacrylate, ethyl methacrylate.
[0152] In some designs, the use of solvents (co-solvents) (e.g., as components of LMP or RMP electrolyte solvent components) that exhibit chlorine-carbon bonds in their structure (e.g., one, zero, or more chlorine-carbon bonds per solvent molecule) or other opportunities for forming SEIs with suitable properties can be advantageous for charge transfer resistance properties (e.g., improved stability, etc.). Examples of chlorine-carbon bond molecules can include tetrachloroethylene, trichloroethylene, hexachloro-1,3-butadiene, chloroethylene carbonate, 4,5-dichloro-1,3-dioxolan-2-one, 4-chloro-5-fluoro-1,3-dioxolan-2-one, 4-chloro-5-methyl-1,3-dioxolan-2-one, 4-chloro-1,3-dioxol-2-one, and 4-(chloromethyl)-1,3-dioxolan-2-one.
[0153] In some designs, it may be beneficial to have a mixture of solvents in the electrolyte composition, one or more of which exhibit a wide electrochemical stability window and one or more of which exhibit a narrower electrochemical stability window (at least in combination with the electrolyte salt). In some designs, it may be beneficial for the electrochemical stability windows of at least some of the electrolyte solvents to differ by more than about 1 V. In some designs, it may be advantageous for at least one component of the LMP solvent mixture to exhibit a higher electrochemical stability window than at least one component of the RMP solvent mixture (at least when used with the same electrolyte salt).
[0154] In some designs, it may be advantageous for the LMP solvent in a suitable electrolyte composition to exhibit a specific molecular size for optimal performance. The optimal size or size distribution of the LMP molecules may depend on the characteristics of the electrode, the electrolyte solvent blend used, and the cell cycling regime (temperature, voltage range, etc.). In one example, the average LMP molecule (e.g., in an LMP solvent mixture when two or more LMP solvents are used, or in a single-solvent LMP composition) may preferably contain about 9 to about 30 atoms per solvent molecule. In some designs, the average LMP molecule (e.g., in an LMP solvent mixture or a single-solvent LMP composition) may contain about 3 to about 10 carbon atoms in its molecular structure. In some designs, smaller LMP molecules (especially smaller linear molecules) may result in reduced cell cycling stability. In some designs, larger LMP molecules (especially larger linear molecules) may result in undesirable reduced rate performance of the cell. In some designs, when a linear ester is used as a component of the LMP solvent, it may be advantageous for the ester to contain an average of about 3 to about 9 carbon atoms per molecule. In some designs, when an LMP solvent includes an ester with a side chain (additional functional group), it may be advantageous for the ester to contain an average of about 4 to about 12 carbon atoms per molecule. In some designs, an average ester molecule (in an LMP co-solvent) having an average of 4 to 8 carbon atoms per molecule may provide the most stable performance in a cell. In some designs, an average ester molecule (in an LMP co-solvent) having an average of 5 to 7 carbon atoms per molecule (in some designs, 5 carbon atoms per molecule) may provide the most stable performance in a cell. In some designs, it may be advantageous for about 50% or more by volume of the LMP solvent to contain ester molecules having an average of 5 or 6 carbon atoms per molecule.
[0155] In some designs where esters are used as cosolvents in the appropriate electrolyte mixture (e.g., for some cells with blended anodes and high-pressure intercalation cathodes), it may be advantageous for the total fraction of esters in the electrolyte solvent to range from about 20% to about 90% by volume (about 20% to about 40% by volume for some designs including linear or branched esters, about 40% to about 50% by volume for other designs, about 50% to about 60% by volume for other designs, about 60% to about 70% by volume for other designs, about 70% to about 80% by volume for other designs, and about 80% to about 90% by volume for other designs), based on the total volume fraction of all solvents in the electrolyte. In some designs, lower and higher ether fractions may result in a significant reduction in cycling stability, especially at high temperatures.
[0156] In some designs where an ester is used as a cosolvent in a suitable electrolyte mixture (e.g., for some cells with a blended anode and an intercalation cathode, including a high-pressure intercalation cathode), it may be advantageous for the branched ester to comprise about 40% to about 100% by volume of the total esters in the electrolyte (about 40% to about 50% by volume in some designs, about 50% to about 60% by volume in other designs, about 60% to about 70% by volume in other designs, about 70% to about 80% by volume in other designs, and about 80% to about 100% by volume in other designs). The use of a higher fraction of branched esters may reduce gassing in the cathode (especially at high voltages or temperatures), improve cycle life, reduce cell bulging at end-of-life, and provide other performance or safety benefits. Some of these benefits may also apply to cells with pure conversion-type anodes that do not contain intercalation-type materials (e.g., graphite or soft or hard carbon).
[0157] In some designs, it may be advantageous (for improved cell performance) to use a combination of two, three, or more branched or linear esters of the same chemical formula but different molecular structures in the electrolyte solvent mixture. For example, a combination of two, three, or more of the following branched or linear esters may be used: ethyl isobutyrate (CH 12 O2), methyl isovalerate (C6H 12 O2), isopropyl propionate (C6H 12 O2), isobutyl acetate (C6H 12 O2), isoamyl formate (CH 12 O2), methyl valerate (C6H 12 O2), ethyl butyrate (C6H 12 O2), Propionate (C6H 12 O2), butyl acetate (CH 12 O2) and amyl formate (CH 12 Alternatively, in other examples, a combination of two, three or more of the following esters is used: isovalerethyl (CH 14 O2), isomethyl caproate (C7H 14 O2), isoethyl valerate (C7H 14 O2), isopropyl butyrate (C7H 14 O2), isobutyl propionate (C7H 14 O2), isoamyl acetate (C7H 14 O2), isohexyl formate (C7H 14 O2), methyl caproate (C7H 14 O2), ethyl valerate (C7H 14 O2), Propyl butyrate (C7H 14 O2), butyl propionate (C7H 14 O2), amyl acetate (C7H 14 O2), hexyl formate (C7H 14 Alternatively, in other examples, a combination of two, three or more of the following esters is used: methyl isobutyrate (CH 10 O2), ethyl isopropionate (C5H 10 O2), isopropyl acetate (C5H 10 O2), isobutyl formate (CH 10 O2), methyl butyrate (C5H10 O2), ethyl propionate (C5H 10 O2), Propyl acetate (C5H 10 O2), butyl formate (CH 10 O2).
[0158] In some designs, the electrolyte may use, for example, a combination of two, three, or more esters (and in some designs, a combination of esters or anhydrides) of similar chemical formulas that differ by no more than three carbon atoms (e.g., CH 10 O2, C6H 12 O2 and C7H 14 It may be advantageous (for improved cell performance, such as improved rate or improved stability) to use a combination of branched (or linear) esters of formula O2. In some designs, it may be advantageous if the combination of esters (or ethers or anhydrides) exhibits a lower melting point than each of the individual solvents (e.g., individual esters, individual ethers, or individual anhydrides).
[0159] In some designs, it may be advantageous (for improved cell performance) to use a combination of functionalized and non-functionalized esters (and in some designs, a combination of ethers or a combination of anhydrides) in the electrolyte. In some designs, it may be advantageous for the linear (or branched or cyclic) portions of the esters (or ethers) to be the same or similar, such that the presence of (e.g., different) functional groups separates the esters (or ethers).
[0160] When branched and linear esters, branched and cyclic esters, cyclic and linear esters, or combinations of branched, linear and cyclic esters (and in some designs combinations of esters and ethers) are used, and when they have functional groups, in some designs it can be advantageous (for improved cell performance) for at least a portion of the esters or ethers to remain unfunctionalized.
[0161] In some designs, it may be advantageous (for improved cell performance) to use branched and linear esters, branched and cyclic esters, cyclic and linear esters, or combinations of branched, linear, and cyclic esters in the electrolyte.
[0162] In some designs, when a combination of linear, branched, or cyclic esters is used and at least some of them have functional groups, it may be advantageous (for improved cell performance) for at least some of the linear, branched, or cyclic esters to have the same functional group.
[0163] In some designs (when a mixture of different esters is used), it may be advantageous for the linear or branched esters in the electrolyte mixture to exhibit the same chemical tail (same R group) or belong to the same subclass.
[0164] In some designs, it may be advantageous (for improved cell performance) to use a combination of ethers and esters in the electrolyte, and in some designs, it may be advantageous for the number of carbon atoms in the ester molecule to not exceed the number of carbon atoms in the ether molecule by more than 6 (e.g., having 2 or 3 carbon atoms in the ether molecule and 5, 6, or 7 carbon atoms in the ester molecule).
[0165] In some designs, it may be advantageous (for improved cell performance) to use a combination of esters, ethers, and anhydrides (eg, branched) in the electrolyte.
[0166] In some designs, when a combination of esters, ethers, and anhydrides is used, it may be advantageous for the linear (or branched or cyclic) portions of the esters (or ethers or anhydrides) to be the same or similar, such that the presence of (e.g., different) functional groups separates the esters (or ethers or anhydrides).
[0167] In some designs, it may be advantageous (for improved cell performance) to use a combination of two or more (eg, linear, branched, or cyclic) anhydrides in the electrolyte.
[0168] In some designs (using cells with high-pressure cathodes), it may be advantageous to use sulfones as a component of the RMP solvent (for improved cell performance). In some designs, it may be advantageous for the sulfone to comprise about 17% to about 97% by volume of the total RMP solvent in the electrolyte formulation. In some designs, it may be advantageous for the sulfone to include both cyclic and linear (or more generally non-cyclic) sulfones.
[0169] FIG. 2 shows exemplary Raman spectra of suitable converted Si-containing and C-containing active particles, showing a suitable carbon signature and a suitable (e.g., higher) I D / I G In particular, the Raman spectrum is shown for Sample A, which is composed of converted Si-containing composite particles (e.g., configured as a powder) having a shell with a conductive carbon coating layer, and Sample B, which is also composed of converted Si-containing composite particles (e.g., configured as a powder) having a shell with a conductive carbon coating layer. D / I G The ratio may correspond to better stability and rate capability in the blended anode in some designs.
[0170] FIG. 3 shows (a) approximately 19.2 wt. % (based on the total weight of the active material) of suitable converted Si-containing active material particles of approximately spherical shape, 5-10 m 2 / g range and a median size (diameter) in the 1-2 micron range, and (b) about 81.8 wt. % (based on the total weight of active material) of irregularly shaped artificial graphite particles, 1-1.5 m 2 / g range and median D in the 12-20 micron range vAn exemplary suitable aqueous slurry-coated blend anode is shown, comprising a BET SSA of size 50 (average dimension). These graphite particles exhibit a reversible capacity of up to about 340 mAh / g and a first-cycle coulombic efficiency of up to about 94%. These Si-containing active material particles exhibit a reversible capacity in the range of 1500-1700 mAh / g and a first-cycle coulombic efficiency of up to about 92%. The blend anode also comprises a two-component CMC / SBR binder (having relative fractions of CMC and SBR of about 25 wt. % and about 75 wt. % based on the total weight of the combined CMC and SBR). The density of the blended (calendered) anode is 1.3-1.5 g / cm. 3 The packing efficiency of the active particles in the blend anode was estimated to be in the range of 58-65% by volume.
[0171] 4 shows an exemplary discharge voltage curve for a cell with an LCO cathode matched with a graphite or blend anode, where 42% of the capacity of the blend anode was contributed by the Si-containing porous nanocomposite powder. In this particular example, the Si-containing porous nanocomposite powder was approximately spherical in shape and exhibited a core-shell structure and the following characteristics: an average particle size (diameter) in the range of about 1 to about 2 microns, and a specific surface area of about 2.5 to about 25 m. 2 / g, and the closed pore volume is approximately 0.2 cm 3 / g to about 0.8 cm 3 / g, with a total porosity ranging from about 20% to about 70% by volume, and a conductive sp 2 containing bonded carbon and having Raman D and G band peak intensities I in the range of about 1 to about 2 when measured using a laser operating at a wavelength of 532 nm. D / I G The blend anode contained a CMC and SBR blend binder and a carbon nanotube carbon additive. The blend cell electrolyte contained 40% or more of a low-melting-point ester as a LMP cosolvent.
[0172] 5A shows exemplary select performance characteristics (first cycle lithiation capacity, delithiation capacity, first cycle loss, and first cycle coulombic efficiency) of graphite anodes versus those of blend anodes with different percentages of total capacity contributed by the Si-containing particles: porous core-shell silicon-containing nanocomposite powders or carbon-coated silicon oxide powders having the microstructures, chemistries, and characteristics described in embodiments of the present disclosure. The blend anodes included CMC and SBR blend binders.
[0173] Figure 5B shows exemplary select performance characteristics (first cycle areal lithiation capacity, first cycle coulombic efficiency, first cycle areal reversible capacity) of graphite anodes versus those of blend anodes with different percentages of total capacity contributed by Si-containing particles: porous core-shell silicon-containing nanocomposite powders or carbon-coated silicon oxide powders having the microstructure, chemistry, and characteristics described in this disclosure. The blend anodes contained CMC and SBR blend binders and no conductive additives. The active material contributed up to approximately 97% by weight of the blend anode (not considering the weight of the Cu current collector foil).
[0174] Figure 6 shows the cycling stability of exemplary complete cells based on an LCO cathode and a blend anode with approximately 42% capacity provided by Si-containing nanocomposite particles of suitable composition and properties (the remainder provided by graphite) in three LiPF6-based electrolytes, two suitable and one unsuitable, with a CMC and SBR blend binder and a conductive additive of carbon nanotubes. The unsuitable electrolytes contained a significant fraction of PC cosolvent (29 vol%) and no EC. The suitable electrolytes contained VC or EC or both and a high volume fraction of an ester cosolvent (58 vol% or 48 vol%, respectively). These ester cosolvent molecules had an average of five carbon atoms per molecule. These cells provided moderate capacity loadings (3-3.5 mAh / cm). 2 It was constructed with a reversible (reversible) and cycled (repeatedly charged and discharged) between 2.5 and 4.4 V at a rate of approximately C / 2.
[0175] Figure 7A shows the capacity and capacity retention of an exemplary full cell based on a layered intercalation cathode (LCO) and an intercalation anode (graphite) or a blend anode with an anode areal capacity of 24% and 42%, respectively, provided by core-shell Si-containing porous nanocomposite particles or carbon-coated silicon oxide (SiOx) particles of appropriate composition and properties. The blend anode with appropriate Si-based porous nanocomposite particles exhibited excellent cycling stability (although slightly inferior to that of the graphite anode). In some designs, even better cycling stability was achievable when the LCO was replaced with an NCM or NCA cathode, especially a Ni-rich cathode.
[0176] Figure 7B shows the areal capacity and capacity retention of exemplary full cells based on a layered Ni-rich intercalation cathode (NCM-811) and blend anodes with anode areal capacities of 20%, 33%, 41%, and 49% provided by core-shell Si-containing porous nanocomposite particles or carbon-coated silicon oxide (SiOx) particles of appropriate composition and properties. The blend anodes with appropriate Si-based porous nanocomposite particles exhibited excellent cycling stability (although slightly inferior to graphite anodes). The cells were cycled at a C / 2 rate in the voltage range of 2.5 to 4.2 V.
[0177] FIG. 8 shows an exemplary comparison of modeled capacity and formation losses versus experimentally obtained capacity and formation losses for exemplary anodes with different % capacity contributed by Si-containing nanocomposite particles in the blend anode (except for 0 and 100%, where the anode is either graphite-based or purely Si-containing nanocomposite-based).
[0178] In some design examples, the conversion anode material of the blend anode may exhibit one, two, or more, or all of the following preferred features, compositions, or properties: a median specific reversible capacity in the range of about 1400 mAh / g to about 2200 mAh / g; a first cycle coulombic efficiency in the range of about 88% to about 96%; about 40% to about 60% by weight of Si in its composition (Si is present in the form of dispersed Si nanoparticles having a volume average size in the range of about 2 nm to about 40 nm); a core-shell nanocomposite powder morphology; an average thickness of the outer shell in the range of about 1 nm to about 20 nm; and a thickness of about 0.1 to about 1 cm. 3 / g and an average internal pore size ranging from about 1 nm to about 50 nm, and an internal porosity of internal pores inaccessible to the electrolyte in the incorporated cell, from about 1 to about 2 g / cm 3 Average density in the range of about 1 to about 25 m 2 / g, less than about 2 wt. % oxygen (O), less than about 0.5 wt. % hydrogen (H), and about 6 wt. % to about 60 wt. % carbon (C) (this carbon is characterized by the intensity ratio of the Raman D band to the Raman G band (I) when recorded for the conversion-type anode material powder using a Raman spectrometer equipped with a laser operating at a wavelength of about 532 nm). D / I G ) is in the range of about 0.7 to about 2), a core-shell structure (the shell is sp 2 containing bonded carbon).
[0179] In some design examples, the blend anode has the following preferred characteristics, compositions, or properties: gravimetric capacity (not including the weight of the current collector foil) ranging from about 400 mAh / g to about 1200 mAh / g, from about 3 to about 4.5 mAh / cm 2 (e.g., for electronic devices) or about 4.5 to about 8 mAh / cm 2 (e.g., for electric vehicles) and exhibit one, two or more, or all of the following reversible areal capacities in the range: soft carbon, hard carbon, synthetic (or artificial) graphite, natural graphite, approximately 1.2 g / cm 3 to approximately 1.8 g / cm 3and comprises about 2% to about 7% by weight of a polymer or copolymer binder (not including the weight of the current collector), which may include at least one of the following polymers or copolymers: PAA or a salt thereof, CMC, alginic acid or a salt thereof, and SBR.
[0180] In some designs, Li-ion battery cells with suitable blend anodes can include intercalation-type cathode materials containing at least one of the following transition metals: Ni, Co, Mn, and Fe. In some designs, the cathode can comprise LCO, NCM, NCA, LMO, NCMA, and related cathode materials. In other designs, the cathode can include LFP, LFMP, other olivine-type, and related cathode materials.
[0181] In one illustrative example, a Li-ion battery cell is disclosed that includes: (a) a porous blend anode of suitable composition (e.g., a blend of graphite or soft carbon and a Si-containing active material, as described above) having properties of a specific capacity in the range of about 380 mAh / g to about 800 mAh / g (taking into account the mass and volume of all active materials, conductive additives, and binder, but not including the weight and volume of the current collector); 2 to approximately 6.5mAh / cm 2 and a porosity ranging from about 15 vol.% to about 50 vol.%, (b) a porous intercalation-type cathode (such as LCO, NCM, NCA, NCMA, LMO, LFP, LMFP, etc. or mixtures thereof) having a specific capacity (taking into account the mass and volume of all active materials, conductive additives, and binder, but not the weight and volume of the current collector) ranging from about 150 mAh / g to about 240 mAh / g, and a specific capacity of about 2.7 mAh / cm. 2 to approximately 6.0mAh / cm 2and a porosity ranging from about 10% to about 30% by volume; (c) a porous separator comprising both ceramic (such as aluminum oxide or magnesium oxide in some examples) and polymeric components, and having a total thickness ranging from about 5 microns to about 15 microns (when stacked or compressed in a roll cell) and a total porosity ranging from about 30% to about 75% by volume; (d) a liquid electrolyte permeating the porous anode, separator, and cathode, the electrolyte comprising: (i) one, two, three, or more nitriles (e.g., added to improve cathode stability) in a total amount of about 0.1% to about 2% by volume; a liquid electrolyte comprising: (ii) one, two, three, or more esters (such as ethyl isobutyrate, methyl isovalerate, isopropyl propionate, isobutyl acetate, isoamyl formate, methyl valerate, ethyl butyrate, propyl propionate, or the like, or mixtures thereof) in a total amount of about 60% to about 92% by volume; and (iii) a Li salt (such as LiPF, LFO, LiNO, LiFSI, LiTFSI, or the like, or mixtures thereof) at a concentration of about 1 M to about 1.6 M dissolved in a mixture of one, two, three, or more cyclic carbonates (such as FEC, VC, VEC, PC, EC, or the like, or mixtures thereof) in a total amount of about 6% to about 39.9% by volume, resulting in a total Li-ion battery cell capacity ranging from about 1.5 Ah to about 150 Ah. In this particular illustrative example, the electrolyte contains little (e.g., only about 0-10% by volume) or no linear or branched carbonate. For an LCO cathode, the cell can be charged to, for example, about 4.4-4.5 V. For an NCA, NCM, or NCMA cathode, the cell can be charged to, for example, about 4.2-4.35 V.
[0182] In some designs, electrolytes used in Li-ion battery cells with suitable blend anodes can advantageously include both esters (linear or branched esters, or various other combinations) as LMP cosolvents and cyclic carbonates (among other cosolvents). In some designs, the esters can advantageously be predominantly (or exclusively) branched esters (e.g., for improved anode SEI stability and longer cycling stability). In some designs, the volume fraction of the esters (e.g., branched esters, or mixtures of branched and linear esters) can advantageously range from about 20% to about 90% by volume as a fraction of the total solvent in the electrolyte. In some designs, the molecules of the esters (e.g., branched esters, or mixtures of linear and branched esters) can have an average of about 5 to about 7 carbon (C) atoms per molecule. In some designs, the electrolyte mixture can further include a nitrile additive.
[0183] This description is provided to enable any person skilled in the art to make or use embodiments of the invention. However, it is to be understood that the invention is not limited to the particular formulations, process steps, and materials disclosed herein, as various modifications to these embodiments will be readily apparent to those skilled in the art. Indeed, the generic principles defined herein may be applied to other embodiments without departing from the spirit and scope of the invention.
Claims
1. an anode electrode and a cathode electrode; an electrolyte that ionically bonds the anode electrode and the cathode electrode; a separator that electrically separates the anode electrode and the cathode electrode; Equipped with the anode electrode includes an anode coating and an anode current collector; the anode coating comprises a binder and a plurality of (i) silicon / carbon (Si / C) composite particles and (ii) carbonaceous intercalation-type particles; When configured as a powder and recorded on the plurality of Si / C composite particles using a Raman spectrometer equipped with a laser operating at a wavelength of 532 nm, (a) the ratio of the intensity of the Raman D band to the intensity of the Raman G band (I D / I G ) is in the range of 1.0 to 2.7, and (b) the full width at half maximum (FWHM) of the Raman G band is 10 cm -1 From 150cm -1 is in the range of the plurality of Si / C composite particles have an average size of 500 nm to 20 microns; the Si / C composite particles comprise, as fractions of the total weight of the plurality of Si / C composite particles, 20 wt % to 80 wt % silicon (Si), 0 wt % to 5 wt % oxygen (O), 0 wt % to 10 wt % nitrogen (N), and 6 wt % to 60 wt % carbon (C); Cylindrical or prismatic Li-ion batteries.
2. The area capacity load of the anode electrode is 3 mAh / cm 2 to 10 mAh / cm 2 2. The cylindrical or prismatic Li-ion battery of claim 1, wherein the
3. 10. The cylindrical or prismatic Li-ion battery of claim 1, wherein the carbonaceous intercalation particles of the anode coating include natural graphite and synthetic graphite.
4. 10. The cylindrical or prismatic Li-ion battery of claim 1, wherein at least a portion of the carbonaceous intercalation type particles of the anode coating comprise a surface layer.
5. 5. Cylindrical or prismatic Li-ion battery according to claim 4, wherein said surface layer exhibits a thickness ranging from 0.5 nm to 20 nm and comprises 20% to 100% by weight of carbon.
6. The carbonaceous intercalation type particles are 0.5 m 2 / g to 10m 2 10. The cylindrical or prismatic Li-ion battery of claim 1, wherein the battery exhibits a Brunauer-Emmett-Teller (BET) specific surface area in the range of 1000 W / g.
7. The carbonaceous intercalation particles have an I in the range of 1.0 to 2.7 when recorded on a powder using a Raman spectrometer. D / I G (d) The FWHM of each of the Raman G bands is 10 cm -1 From 150cm -1 2. The cylindrical or prismatic Li-ion battery of claim 1, wherein the
8. 10. The cylindrical or prismatic Li-ion battery of claim 1, wherein the carbonaceous intercalation particles exhibit a reversible capacity in the range of 300 mAh / g to 380 mAh / g.
9. 10. The cylindrical or prismatic Li-ion battery of claim 1, wherein the carbonaceous intercalation particles exhibit a wetting angle in the range of less than 90 degrees when in contact with water or an aqueous solution.
10. 10. The cylindrical or prismatic Li-ion battery of claim 1, wherein said carbonaceous intercalation-type particles exhibit a median size of less than 25 microns.
11. The anode coating is 1.0 g / cm 3 to 2.0 g / cm 3 2. The cylindrical or prismatic Li-ion battery of claim 1, wherein the Li-ion battery exhibits a density of
12. 10. The cylindrical or prismatic Li-ion battery of claim 1, wherein the anode coating has an electrolyte-filled porosity of 5% to 35% by volume.
13. 10. The cylindrical or prismatic Li-ion battery of claim 1, wherein the binder comprises a mixture of two or more binder components that exhibit different swelling properties and / or different mechanical properties and / or different compositions in the electrolyte.
14. 14. The cylindrical or prismatic Li-ion battery of claim 13, wherein the two or more binder components comprise: (i) carboxymethyl cellulose (CMC) or various salts and mixtures thereof, (ii) (poly)acrylate, (iii) styrene butadiene rubber (SBR), (iv) other rubber compositions such as polybutadiene, polyethylene, polyethylene propylene, styrene ethylene butylene, ethylene vinyl acetate, polytetrafluoroethylene, perfluoroalkoxyethylene, isoprene, butyl rubber, nitrile rubber, ethylene propylene rubber, polyacrylic rubber, silicone rubber, fluorosilicone rubber, polyether block amide, polysiloxane, and various copolymers thereof, (v) (poly)ethylene oxide (EO), (vi) (poly)vinyl alcohol (PVA), (vii) (poly)amide imide (PAI), (viii) cellulose, nanocellulose fibers, nanocrystals, or carboxyethyl cellulose, (ix) polytetrafluoroethylene (PTFE), and / or (x) copolymers thereof.
15. 10. The cylindrical or prismatic Li-ion battery of claim 1, wherein the binder comprises elastic nanoparticles having a maximum elongation in the range of 50.0% to 10,000%.
16. 10. The cylindrical or prismatic Li-ion battery of claim 1, wherein the anode coating further comprises carbon nanotubes, carbon nanofibers, or other one-dimensional (1D) carbon materials, or any combination thereof.
17. 10. The cylindrical or prismatic Li-ion battery of claim 1, wherein the anode coating exhibits a tensile strain to failure of from 8% to 60%.
18. 10. The cylindrical or prismatic Li-ion battery of claim 1, wherein the anode coating exhibits a compressive yield strength of less than 300 MPa.
19. The adhesive strength of the anode coating is evaluated using a 180-degree peel test in which a 0.5 inch wide strip of 3M® 401M tape is adhered to the anode coating and a 20 mm long strip is measured to peel it from the anode current collector at 2 mm / s; 2. The cylindrical or prismatic Li-ion battery of claim 1, wherein the average force is in the range of 0.05N to 50N.
20. 10. The cylindrical or prismatic Li-ion battery of claim 1, wherein the Si / C composite particles account for 5 wt% to 50 wt% of the total weight of active materials in the anode electrode.
21. 10. The cylindrical or prismatic Li-ion battery of claim 1, wherein the Si / C composite particles account for 15% to 90% of the total capacity of the anode electrode.
22. 10. The cylindrical or prismatic Li-ion battery of claim 1, wherein the Si / C composite particles exhibit a specific reversible capacity ranging from 1400 mAh / g to 2800 mAh / g.
23. 2. The cylindrical or prismatic Li-ion battery of claim 1, wherein the Si / C composite particles exhibit a spherical or ellipsoidal shape.
24. 2. The cylindrical or prismatic Li-ion battery of claim 1, wherein the Si / C composite particles exhibit an average size ranging from 1 micron to 10 microns.
25. The Si / C composite particles are 0.5 m 2 / g to 10m 2 10. The cylindrical or prismatic Li-ion battery of claim 1, wherein the battery exhibits a Brunauer-Emmett-Teller (BET) specific surface area in the range of 1000 W / g.
26. 10. The cylindrical or prismatic Li-ion battery of claim 1, wherein the Si / C composite particles comprise one or more micropores, one or more mesopores, or both.
27. The Si / C composite particles are 0.07 cm 3 10. The cylindrical or prismatic Li-ion battery of claim 1 having a total pore volume of greater than 1000 sq. m / g.
28. 2. The cylindrical or prismatic Li-ion battery of claim 1, wherein the Si / C composite particles have a surface layer comprising carbon, and the median in-plane crystallite size, La, of the carbon is in the range of 10 angstroms to 300 angstroms as estimated using Raman spectroscopy or X-ray diffraction.
29. 10. The cylindrical or prismatic Li-ion battery of claim 1, wherein the anode current collector exhibits an average thickness of from 4 microns to 11 microns.
30. 10. The cylindrical or prismatic Li-ion battery of claim 1, wherein the anode current collector exhibits a specific tensile strength in the range of 400 MPa to 2000 MPa.
Citation Information
Patent Citations
Anode for lithium secondary battery and lithium secondary battery comprising same
WO2019107990A1