Graphene-containing metallized silicon oxide composites

Low-defect turbostratic carbon-coated SiO composite anodes address the degradation issues in silicon-based lithium-ion batteries by maintaining electrical contact and stability, resulting in enhanced cycle life and efficiency.

JP7787100B2Active Publication Date: 2025-12-16NANOGRAF CORP
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Patent Information

Application Number
JP2022570251
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-06-19
Filing Date
2021-05-17
Publication Date
2025-12-16
Estimated Expiration
2041-05-17

AI Technical Summary

Technical Problem

Silicon-based anode materials in lithium-ion batteries suffer from rapid cycle life degradation, low charge/discharge rate capacity, and substandard coulombic efficiency due to extreme volume changes during charge and discharge, leading to electrical disconnection and unstable solid electrolyte interface (SEI) formation.

Method used

Incorporating a low-defect turbostratic carbon coating on silicon oxide (SiO) core particles to form composite anodes, which minimizes stress and maintains electrical contact, enhancing cycle life and efficiency.

Benefits of technology

The composite anodes exhibit significantly improved cycle life, retaining over 90% capacity after 20 cycles and achieving higher first-cycle efficiency compared to uncoated SiO materials.

✦ Generated by Eureka AI based on patent content.

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Abstract

Active material composite particles, electrodes including the composite particles, lithium ion secondary batteries including the electrodes, and methods for forming the same, wherein the composite particles include core particles each including an alkali metal silicate or an alkaline earth metal silicate, and a coating is disposed on the surface of the core particle. -1 and 1360cm -1 The peak intensity (I D ) D band, 1580 cm -1 and 1600cm -1 The peak intensity (I G ) and the G band at 2650 cm -1 and 2750cm -1 The peak intensity (I 2D ) 2D bands, and I D / I G The ratio is between over 0 and about 1 .1 It ranges from 2D / I G The ratio of the turbostratic carbon to the Raman spectrum is in the range of about 0.4 to about 2.
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Description

[Technical Field]

[0001] Aspects of the present disclosure relate to graphene-containing metallized silicon oxide composite active materials, anodes including the same, and batteries including the anodes. [Background technology]

[0002] Lithium (Li)-ion electrochemical batteries typically require materials that enable high energy density, high power density, and high cycling stability. Li-ion batteries are commonly used in a variety of applications, including consumer electronics, wearable computing devices, military mobile devices, satellite communications, spacecraft devices, and electric vehicles, and are particularly popular for use in large-scale energy applications such as low-emission electric vehicles, renewable power plants, and stationary electric grids. Furthermore, lithium-ion batteries are at the forefront of a new generation of wireless and portable communications applications. One or more lithium-ion cells can be used to construct batteries that serve as power sources for any of these applications. However, the explosive growth in the number of applications requiring higher energy has spurred research into lithium-ion batteries with even higher energy density, higher power density, higher-rate charge / discharge capabilities, and longer cycle life. Furthermore, the increasing adoption of lithium-ion technology has driven a growing need to extend today's energy and power densities as applications transition to higher current requirements, longer operating times, wider and higher power ranges, and smaller form factors.

[0003] Silicon or silicon alloy anode materials are currently included in most long-term lithium-ion technology adoption roadmaps as a practical means to achieve higher energy and power densities. Silicon, when fully lithiated, has a theoretical gravimetric capacity of about 4,200 mAh / g and a current density of about 9786 mAh / cm. 3Silicon is a desirable anode active material for lithium-ion electrochemical battery applications, with a volumetric capacity of 1000 volts. Silicon is also a desirable alternative to current graphite-based anodes because its high lithium storage capacity can exceed seven times that of graphite. However, market adoption of silicon-based anodes for use in lithium-ion batteries has been hampered by rapid cycle life degradation, low charge / discharge rate capacity at high power demands, and substandard or insufficient coulombic efficiency, all of which can be caused by extreme anode volume changes during charge and discharge (volume expansions of up to 400% have been documented). The cycle life degradation of silicon-based alloys is well understood and can be subdivided into two fundamental mechanisms: (1) electrical disconnection, which leads to lithium ion consumption and increased impedance, and (2) an unstable solid electrolyte interface (SEI). These mechanisms also impair high rate capacity and coulombic efficiency. Electrical disconnection occurs due to significant volume fluctuations during charge and discharge due to large volume changes during lithiation and delithiation.

[0004] These large volume changes can cause silicon particle pulverization (stress-induced cracks and fractures) and loss of electrical contact between these active silicon particles. This results in an electrochemical cell with low power capability and rapid capacity fade. The cracks and fractures introduced in mechanism (1) further deteriorate the cell's performance by subsequently promoting mechanism (2), an unstable SEI. The cracks and fractures expose new Si surfaces to the electrolyte solvent, leading to the formation of additional SEI and the deposition of lithiated compounds on the new Si surfaces. During charge / discharge cycling, the insulating SEI layer also grows thicker, further reducing the capacity and cycling stability of the Si anode and impairing the charge / discharge rate capacity and coulombic efficiency.

[0005] The continuous and newly grown SEI layer reduces the amount of available Li. +As the amount of available electrolyte decreases over time due to side reactions between the electrolyte solvent and the salt, the amount of available electrolyte similarly decreases, thereby reducing overall electrochemical cell performance. Therefore, the use of silicon-based anodes in applications requiring high electrochemical cell charge / discharge rates is severely limited by the high ohmic and ionic contributions to polarization resulting from these mechanisms. Summary of the Invention [Problem to be solved by the invention]

[0006] Therefore, there is a need for silicon-based electrode materials with improved first cycle efficiency and cycle life.

[0007] Therefore, there is a need for advanced anode active materials for use in electrochemical cells that incorporate carbon materials with defined quality characteristics that favorably affect the cyclability of the electrochemical cell. More specifically, there is a need for advanced silicon-based composite anode materials containing low-defect turbostratic carbon that enable the cycle life stability, energy density, and rate capability of lithium-ion electrochemical cells. [Means for solving the problem]

[0008] According to various embodiments of the present disclosure, the active material composite particles include a core particle including an alkali metal silicate or an alkaline earth metal silicate, and a coating disposed on the surface of the core particle. -1 and 1360cm -1 The peak intensity (I D ) D band, 1580 cm -1 and 1600cm -1 The peak intensity (I G ) and the G band at 2650 cm -1 and 2750cm -1 The peak intensity (I 2D ) 2D bands, and I D / I G The ratio is in the range from greater than 0 to approximately 1.1, and I2D / I G The ratio of the turbostratic carbon to the Raman spectrum is in the range of about 0.4 to about 2.

[0009] According to various embodiments of the present disclosure, a method for forming active material composite particles includes forming a mixture containing core particles including an alkali metal silicate or alkaline earth metal silicate and turbostratic carbon, and spray-drying the mixture to form composite particles including core particles coated with turbostratic carbon. The turbostratic carbon has a Raman spectrum with a D band having a peak intensity (ID) at a wavenumber between 1330 cm and 1360 cm, a G band having a peak intensity (IG) at a wavenumber between 1580 cm and 1600 cm, and a 2D band having a peak intensity (ID) at a wavenumber between 2650 cm and 2750 cm. The ID / IG ratio is in the range of greater than 0 to about 1.1, and the I2D / IG ratio is in the range of about 0.4 to about 2.

[0010] Other principal features and advantages of the present invention will become apparent to those skilled in the art upon review of the following drawings, detailed description, and appended claims. [Brief explanation of the drawings]

[0011] [Figure 1A] FIG. 1A is a scanning electron microscope (SEM) image of active material composite particles according to various embodiments of the present disclosure. [Figure 1B] 1B-1D are cross-sectional views of core particles that may be included in the composite particle of FIG. 1A. [Figure 1C] 1B-1D are cross-sectional views of core particles that may be included in the composite particle of FIG. 1A. [Figure 1D] 1B-1D are cross-sectional views of core particles that may be included in the composite particle of FIG. 1A. [Figures 2A-2C] Figures 2A, 2B, and 2C show the Raman spectra of graphite and various graphene-based materials. [Figure 3]1 is a bar graph comparing the ID / IG ratios of Raman spectra of a typical carbon material and low-defect turbostratic carbon. [Figures 4A-4C] Figures 4A, 4B, and 4C show Raman spectra of electrode active materials containing SiOx core particles encapsulated by amorphous carbon, reduced graphene oxide (rGO), and low-defect turbostratic carbon, respectively. [Figure 5] 1 is a graph showing the cycle life of exemplary and comparative half-cells containing lithium metallized SiO (LM-SiO) according to various embodiments of the present disclosure. [Figure 6] 1 is a graph showing X-ray diffraction results for a control material compared to the material of Example 1, according to various embodiments of the present disclosure. [Figure 7] 1 is a graph showing capacity retention of cycled exemplary and control half-cells containing magnesium metallized SiO (MM-SiO). [Figure 8] 8 is a graph showing the anode capacity of the half-cell of FIG. 7. DETAILED DESCRIPTION OF THE INVENTION

[0012] Various embodiments will now be described in detail with reference to the accompanying drawings. Wherever possible, the same reference numbers will be used throughout the drawings to refer to the same or like parts. References to specific examples and implementations are for illustrative purposes only and are not intended to limit the scope of the invention or the claims.

[0013] When an element or layer is referred to as being "on" or "connected to" another element or layer, it will be understood that the element or layer can be directly on or "connected to" the other element or layer, or that intervening elements or layers can be present. In contrast, when an element is referred to as being "directly on" or "directly connected to" another element or layer, there are no intervening elements or layers present. For purposes of the present disclosure, it will be understood that "at least one of X, Y, and Z" can be interpreted as X only, Y only, Z only, or any combination of two or more items X, Y, and Z (e.g., XYZ, XYY, YZ, ZZ).

[0014] When describing a range of values, unless the context clearly dictates otherwise, it is understood that each intermediate value between the upper and lower limits of that range, to the tenth of the unit of the lower limit, and any other stated or intermediate value within the stated range, is encompassed within the invention. The upper and lower limits of these smaller ranges may independently be included within the smaller ranges and are also encompassed within the invention, subject to any specifically excluded limit within the stated range. Where a stated range includes one or both of the limits, ranges excluding either or both of those included limits are also encompassed within the invention. It will also be understood that the term "about" may refer to a slight measurement error, for example, of + / - 5% to 10%.

[0015] Words such as "then," "then," and "next" are not necessarily intended to limit the order of steps, but rather these words may be used to guide the reader through the method description. Further, references to claim elements in the singular, for example, using the articles "a," "an," or "the," should not be construed as limiting the element to the singular.

[0016] An "electrode material" is defined as a material that can be configured for use as an electrode in an electrochemical cell, such as a lithium-ion rechargeable battery. An "electrode" is defined as either the anode or cathode of an electrochemical cell. A "composite electrode material" is also defined as including active material particles that are electrically conductive material combined with one of particles, flakes, spheres, platelets, sheets, tubes, fibers, or a combination thereof. The particles, flakes, spheres, platelets, sheets, tubes, fibers, or a combination thereof may further be flat, collapsed, crimped, layered, woven, braided, or a combination thereof.

[0017] The conductive material may be selected from the group consisting of conductive carbon-based materials, conductive polymers, graphite, metal powders, nickel, aluminum, titanium, stainless steel, and any combination thereof. The conductive carbon-based material may further include one of graphite, graphene, diamond, pyrolytic graphite, carbon black, low-defect turbostratic carbon, fullerene, or a combination thereof. An "electrode material mix" is defined as a combination of materials, such as material particles (either electrochemically active and conductive composites or combinations thereof), binder(s), and non-crosslinked and / or crosslinked polymer(s), mixed together for use in forming an electrode of an electrochemical cell. An "electrochemically active material," "electrode active material," or "active material" is defined herein as a material that inserts and releases ions, such as ions in an electrolyte, to store and release electrical potential. Furthermore, the term "intercalation and deintercalation" may be understood as intercalating and deintercalating or lithiating and delithiating ions. The process of ion insertion and release is therefore also understood to be intercalation and deintercalation or lithiation and delithiation. Accordingly, "active material" or "electrochemically active material" or "active material particle" is defined as a material or particle that can undergo repeated intercalation and deintercalation of ions or lithiation and delithiation of lithium.

[0018] A "defect" is defined as any feature that disrupts the symmetry of the hexagonal lattice of carbon atoms within a given carbon sheet. By this definition, defects can include vacancies, substitutional atoms, edges, grain boundaries, or changes in carbon hybridization. "Hybridization" is the mixing of standard atomic orbitals to form new orbitals, which can be used to describe molecular bonding. Mixing of standard atomic orbitals is generally referred to as sp 2 and sp 3 Occurs in orbit.

[0019] The defect density is defined as the amount of symmetry-breaking features (defects) in a given unit area of ​​a carbon plane. This value is often estimated as the average distance between two defects. The defect density is expressed as I D / I G It can be estimated by Raman spectroscopy using the ratio.

[0020] A "composite particle" may include one or more core particles containing an electrochemically active material and a coating disposed on the surface of the core particle. The coating may include a carbon material such as turbostratic carbon, carbon nanotubes, activated carbon, or any combination thereof.

[0021] According to various embodiments of the present disclosure, the core particles are at least partially encapsulated (e.g., covered) by a coating. For example, the coating and / or turbostratic carbon may cover, on average, from about 10% to about 100%, e.g., from about 20% to about 90%, from about 25% to about 80%, from about 30% to about 70%, or from about 40% to about 60% of the surface of each core particle. In some embodiments, the coating may be in the form of an envelope or shell that at least partially or completely encapsulates one or more of the core particles.

[0022] In some embodiments, the coating may have a collapsed morphology. The term "collapsed" is defined as a body or mass that exhibits a distribution of folds, ripples, creases, wrinkles, and ridges. The term "collapsed" is also defined as bending or curving. The term "morphology" is defined as the structure and feature(s) of a surface. Specifically, "morphology" is the structure and feature of the outer surface of particles or macroparticles of the electrode material.

[0023] As defined herein, a secondary electrochemical cell is a rechargeable electrochemical cell or battery. "Capacity" is defined herein as a measure of the charge stored by a battery, determined by the mass of active material contained within the battery, and represents the maximum amount of energy in ampere-hours (Ah) that can be extracted from the battery at its rated voltage. Capacity can also be defined by the following equation: Capacity = Energy / Voltage or Current (A) x Time (h). "Energy" is mathematically defined by the following equation: Energy = Capacity (Ah) x Voltage (V). "Specific capacity" is defined herein as the amount of charge that can be delivered per unit mass or volume of active electrode material in a specified time. Specific capacity can be measured in weight units, e.g., (Ah) / g, or volume units, e.g., (Ah) / cc. Specific capacity is defined by the following formula: Specific Capacity (Ah / kg) = Capacity (Ah) / Mass (kg). "Rate capacity" is the ability of an electrochemical cell to accept or deliver a certain amount of energy within a specified period of time. Alternatively, "rate capacity" is the maximum continuous or pulsed energy that a battery can provide per unit of time.

[0024] "C-rate" is defined herein as a measure of the rate at which a battery is discharged relative to its maximum nominal capacity. For example, a current rate of 1C means that the discharge current will discharge the entire battery in 1 hour, a current rate of C / 2 will fully discharge the battery in 2 hours, and a 2C rate will fully discharge the battery in 0.5 hours. "Power" is defined as the time rate of energy transfer measured in watts (W). Power is the product of the voltage (V) across a battery or cell and the current (A) flowing through it. Mathematically, "C-rate" is defined as C-rate (inverse time) = current (A) / capacity (Ah) or C-rate (inverse time) = 1 / discharge time (h). Power is defined by the following formula: Power (W) = energy (Wh) / time (h) or Power (W) = current (A) × voltage (V). Coulombic efficiency is the efficiency with which charge is transferred within an electrochemical cell. Coulombic efficiency is the ratio of charge output by a battery to charge input.

[0025] Active material composite particles When silicon and silicon alloys are incorporated into the electrode of electrochemical battery, they can greatly increase the battery capacity.Silicon and silicon alloys are often incorporated into the electrode that comprises graphite, graphene or other carbon-based active materials.Examples of electrodes that comprise carbon-based materials and silicon are described in Kung et al., U.S. Patent Nos. 8,551,650, 8,778,538 and 9,728,773, and Huang et al., U.S. Patent Nos. 10,135,059 and 10,135,063, the contents of which are all fully incorporated herein by reference.

[0026] As used herein, "SiO material" may generally refer to silicon and oxygen-containing materials. SiO materials are of interest for use in the anode electrodes of lithium-ion batteries due to their high theoretical energy and power densities. However, current commercially available SiO materials, such as silicon oxides (e.g., SiO xThe use of Li-based cations (where x is in the range of 0.8 to 1.2, e.g., 0.9 to 1.1) has been limited by their low first cycle efficiency and high irreversibility. This low first cycle efficiency is due to the high irreversibility of Li-based cations with the silicon oxide matrix. + It is due to the reaction.

[0027] Irreversible Li with silicon oxide + To reduce the reaction, various embodiments include metallized SiO materials (M-SiO). As used herein, M-SiO materials may refer to active materials that react directly with metal-containing precursors, such as alkali- and / or alkaline earth-containing precursors, e.g., lithium-containing precursors and / or magnesium-containing precursors, to form metallized silicon and oxygen-containing phases before being utilized as an active material in a battery and / or undergoing charge and discharge reactions. In one embodiment, all or a portion of the metallized metal remains in the active material and does not intercalate (i.e., insert) or deintercalate during battery charge and discharge. Thus, M-SiO materials may refer to lithium-metallized SiO (LM-SiO) materials and / or Mg-metallized SiO (MM-SiO) materials. However, in some embodiments, M-SiO materials may include SiO materials metallized to include other suitable alkali and / or alkaline earth metals, such as sodium, potassium, calcium, etc. For example, in some embodiments, M-SiO materials may be metallized to include magnesium, lithium, sodium, potassium, calcium, or any combination thereof.

[0028] Electrode materials containing M-SiO active material have been found to provide increased first cycle efficiency (FCE) compared to non-metallized SiO materials. Unfortunately, M-SiO materials have been found to suffer from severe electrical disconnection and rapid capacity loss, often resulting in a capacity loss of more than 90% within 20 cycles. Coating M-SiO materials with carbon and / or other materials and / or blending M-SiO materials with graphite has been found to slightly reduce the electrical disconnection and capacity loss of the active material, delaying the capacity loss to more than 50% by approximately 50 cycles, but the cycling stability is still very insufficient for commercial applications. Overall, current M-SiO materials do not exhibit sufficient electrical stability for commercialization.

[0029] Figure 1A is a scanning electron microscope (SEM) image of an active material composite particle 100 according to various embodiments of the present disclosure, and Figures 1B-1D are cross-sectional views of core particles 102A-102C that may be included in the composite particle 100 of Figure 1A. Referring to Figures 1A and 1B, the composite particle 100 includes a core particle 102 that includes an electrochemically active material and a graphene-containing coating 110 that coats and / or encapsulates the core particle 102.

[0030] In a preferred embodiment, the active material of the core particle 102 comprises an M-SiO material. Accordingly, the composite particle 100 is described below with reference to a core particle 102 comprising an M-SiO material.

[0031] The composite particle 100 and / or the core particle 102 may have an average particle size ranging from about 1 μm to about 20 μm, e.g., from about 2 μm to about 15 μm, from about 3 μm to about 10 μm, from about 3 μm to about 7 μm, or about 5 μm. The core particle 102 may comprise an M-SiO material including metallized silicon species and silicon (e.g., crystalline silicon and / or amorphous silicon). The metallized silicon species may include metallized silicides and metallized silicates. In some embodiments, the M-SiO material may also include silicon oxide (SiO x[where x ranges from 0.8 to 1.2, for example, from 0.9 to 1.1] may also be included. In various embodiments, the M-SiO material may include lithiated silicon species. As used herein, "lithiated silicon species" refers to lithium silicide (Li x Si, 0 < x < 4.4), and / or may include one or more lithium silicates (such as Li2Si2O5, Li2SiO3, and / or Li4SiO4).

[0032] Referring to Figure 1B, in some embodiments, the composite particle 100 may include a heterogeneous core particle 102A that includes an M-SiO material including a plurality of silicon-containing material phases 104, 106, 108. For example, phases 104, 106, 108 may independently include crystalline silicon, silicon oxide (e.g., SiO x [where x ranges from 0.8 to 1.2, for example, from 0.9 to 1.1]), and / or lithiated silicon species. However, in some embodiments, the core particle 102 may be a substantially homogeneous particle lacking distinct phases but including silicon, oxygen, and lithium.

[0033] Referring to Figure 1C, in some embodiments, the composite particle 100 may include a core particle 102B that includes a primary phase 120 in which crystalline silicon regions 122 are dispersed as a secondary phase. For example, the primary phase 120 may include lithiated silicon species, such as lithium silicate species, and particularly Li2Si2O5. In other embodiments, the primary phase 120 may include magnesium metallized silicon species, magnesium silicate species, and particularly MgSiO3, Mg2SiO4, or combinations thereof. The crystalline silicon regions 122 may include crystalline silicon nanoparticles having a particle size of less than 100 nm. For example, the crystalline silicon regions 122 may have an average particle size ranging from about 3 nm to about 60 nm. In one embodiment, most of the crystalline silicon regions 122 may have an average particle size ranging from about 5 nm to about 10 nm, and the remainder of the crystalline silicon regions 122 may have an average particle size ranging from about 10 nm to about 50 nm.

[0034] Referring to FIG. 1D, in some embodiments, composite particle 100 comprises a primary phase 120 comprising M-SiO material, crystalline silicon regions 122, and SiO dispersed in primary phase 120 as a secondary phase. x Region 124 (e.g., SiO x where x is in the range of 0.8 to 1.2, e.g., 0.9 to 1.1. For example, the primary phase 120 may include lithiated silicon species, e.g., lithium silicate species, and in particular Li2Si2O5, and the crystalline silicon regions 122 may include crystalline silicon nanoparticles, e.g., SiO x Region 124 is SiO x The crystalline silicon regions 122 and SiO x Region 124 may have a grain size of less than about 100 nm. For example, crystalline silicon region 122 and SiO x Regions 124 may have an average grain size ranging from about 3 nm to about 60 nm, for example, from about 5 nm to about 50 nm.

[0035] In various embodiments, core particle 102 may represent about 80 wt% to about 99.5 wt%, e.g., about 90 wt% to about 99 wt%, including about 90 wt% to about 95 wt% of the total weight of composite particle 100. In some embodiments, the M-SiO material may include about 40 atomic % to about 5 atomic %, e.g., 20 atomic % to about 10 atomic %, or about 15 atomic % lithiated silicon species. In some embodiments, the M-SiO material of core particle 102A may include about 60 atomic % to about 95 atomic %, e.g., about 80 atomic % to about 90 atomic %, or about 85 atomic % silicon and SiO x The M-SiO material of core particle 102 may have a silicon to oxygen atomic weight ratio ranging from about 1.25:1 to about 1:1.25, such as from about 1.1:1 to about 1:1.1, or about 1:1. In some embodiments, the M-SiO material of core particle 102 may comprise crystalline silicon and SiO of approximately equal atomic weight. x may include:

[0036] During the initial charging reaction and / or subsequent charging reactions, the composition of the M-SiO material of the core particle 102A may change due to lithiation and / or other reactions. For example, Si and SiO x Lithium is added to x A Si region can be formed. In addition, some SiO x can form inactive species such as lithium silicate and LiO.

[0037] 1B-1D, coating 110 may be in the form of a shell that completely encapsulates core particle 102. However, in some embodiments, coating 110 may only partially encapsulate some or all of core particle 102. In some embodiments, coating 110 may represent from about 0.5% to about 20% by weight, based on the total weight of the composite particle, e.g., from about 1% to about 10% by weight, or from about 5% to about 10% by weight of the total weight of composite particle 100.

[0038] In some embodiments, the coating 110 can include a flexible, highly conductive graphene material, such as graphene, graphene oxide, partially reduced graphene oxide, or a combination thereof. For example, the coating 110 can preferably include a flexible, highly conductive graphene material with low-defect turbostratic properties, which may also be referred to as turbostratic carbon. The low-defect turbostratic carbon can be in the form of platelets comprising from one to about ten layers of graphene material, such as graphene, graphene oxide, or reduced graphene oxide. In some embodiments, the low-defect turbostratic carbon can include at least 90% by weight, e.g., from about 90% by weight to about 100% by weight, of graphene. The graphene material can further include powders, particles, single-layer sheets, multi-layer sheets, flakes, platelets, ribbons, quantum dots, tubes, fullerenes (hollow graphene spheres), or a combination thereof.

[0039] The turbostratic carbon may be in the form of sheets or platelets that overlap to replicate the structure of a larger single sheet. In some embodiments, the platelets have two or more graphene-based material layers. In some embodiments, the platelets may have a sheet size that may average 15 μm or less. In some embodiments, the platelets may have a sheet size that may average 1 μm or less. In some embodiments, the turbostratic carbon-based material platelets may have a small thickness. In some embodiments, the small thickness of the turbostratic carbon-based material platelets may average 1 μm or less. In some embodiments, the small thickness of the turbostratic carbon-based material platelets may average 100 nm or less.

[0040] In addition to the graphene material, the coating 110 can include one or more additives, such as polymers, carbon nanotubes, activated carbon, and / or surfactants. In various embodiments, the coating 110 can include lithium-containing species (e.g., LiF), alkali metal species, polymer coating species, amorphous carbon, and / or other conductive additives or agents. For example, the conductive additives or agents can include carbon black, KETJENBLACK, Super-P carbon black, low-defect turbostratic carbon, acetylene black, channel black, furnace black, lamp black, thermal black, graphite, natural graphite, synthetic graphite, graphite oxide, partially reduced graphite, flake graphite, exfoliated graphite, platelet graphite, or combinations thereof. The conductive agent may also include one of conductive fibers, carbon fibers, metal fibers, carbon nanotubes (CNTs), single-walled CNTs, double-walled CNTs, multi-walled CNTs, metal powders, fluorocarbon powders, aluminum powders, nickel powders; nickel flakes, conductive whiskers, zinc oxide whiskers, potassium titanate whiskers, conductive metal oxides, titanium oxide, conductive organic compounds, conductive polyphenylene derivatives, conductive polymers, or combinations thereof.

[0041] For example, in some embodiments, the composite particle 100 may comprise from about 0.5% to about 19% by weight, e.g., from about 1% to about 10% by weight, or from about 5% to about 10% by weight, turbostratic carbon, and from 0% to about 2% by weight, e.g., from about 0.25% to about 1% by weight, or about 1% by weight, carbon nanotubes, based on the total weight of the composite particle 100.

[0042] Coating 110, due to its electrical conductivity, ensures that the M-SiO material of core 102 circulates uniformly / uniformly in all three dimensions (movement of electrons and Li-ions in and out of the structure), thereby minimizing stresses exerted on and by the core particle and may minimize particle fracture. Furthermore, in the event that the core M-SiO material fractures, flexible coating 110 serves to electrically connect the fractured M-SiO material and maintain the overall integrity of composite particle 100, which may result in significantly improved electrochemical performance.

[0043] For example, as discussed in detail below, graphene-containing coating 110 has been found to electrically stabilize M-SiO materials and increase their cyclability to over 300 cycles. Furthermore, coating 110 has been found to result in significantly improved electrical conductivity and higher first-cycle efficiency values ​​for M-SiO materials compared to raw (e.g., uncoated) M-SiO materials or M-SiO materials coated with graphite and carbon black. In some embodiments, electrode materials including composite particles 100 can retain over 90% of their usable capacity after 20 cycles, which can increase usable cycle life by over 9 times.

[0044] Turbostratic carbon Figures 2A, 2B, and 2C show the Raman spectra of graphite and various graphene-based materials. -1 , 1584cm -1 , and 2700 cm -1It is well established that the fluorine-containing compound has a characteristic peak at 1340 cm -1 The peak at 1584 cm is shown in Figure 2C and is characterized as the D band. -1 The peak at is shown in the spectra of Figures 2A and 2C and is characterized as the G band, which is due to the sp 2 It arises from vibrational modes represented by the C=C bond stretching of every pair of hybridized carbon atoms. The D band originates from hybridized vibrational modes associated with the edges of graphene, indicating the presence of defects or broken symmetry within the graphene structure. 2700 cm -1 The peak at is shown in Figure 2B and characterized as a 2D band, which arises from a double-resonance process based on interactions between stacked graphene layers. The appearance of a double peak at the 2D wavenumber breaks the peak symmetry and indicates AB stacking order between graphene planes, such as nanoplatelets, in graphite and graphite derivatives. The 2D1 peak shown in Figure 1B is suppressed when the AB stacking order of turbostratic multilayer graphene particles is disrupted. The positions of the G band and the 2D band are used to determine the number of layers in a material system. Thus, Raman spectroscopy provides scientific clarity and definition for electrochemical battery carbon material additives, providing a fingerprint for their correct selection as additives for active material electrode compositions. As shown, this definition provides a fingerprint for the low-defect turbostratic carbon of this application. It is this low-defect turbostratic carbon that provides superior electrochemical battery performance when used as an additive to electrochemical battery electrode active material mixtures.

[0045] FIG. 3 shows the I of carbon additives (i.e., reduced graphene oxide or amorphous carbon) commonly used in electrode active material mixtures in the prior art. D / I G The ratios are given relative to low defect turbostratic carbon in this application.

[0046] Reduced graphene oxide (rGO) is another form of carbon often referred to in the industry as graphene, but its final structure and manufacturing process are unique. Graphene oxide is typically produced using a modified Hummers method, in which graphitic material is first oxidized and exfoliated into single layers or platelets containing several carbon layers that may contain various functional groups, including, but not limited to, hydroxyl, epoxide, carbonyl, and carboxyl. These functional groups are then removed by chemical or thermal treatment, converting the insulating graphene oxide into conductive reduced graphene oxide. Reduced graphene oxide is similar to graphene in that it consists of a single layer of a carbon atom lattice, but differs in that it has mixed sp2 and sp3 hybridization, residual functional groups, and often increased defect densities resulting from the manufacturing and reduction process. Reduced graphene oxide is shown in the first bar of Figure 3 and has an I of 0.9. D / I G It has a ratio.

[0047] Amorphous carbon is often used as an additive or surface coating for both the anode and cathode material mixtures in electrochemical cells to enhance the electrode's electrical conductivity. Typically, amorphous carbon is produced using a chemical vapor deposition (CVD) process, in which a hydrocarbon feed gas is flowed into a sealed vessel and carbonized onto the surface of a desired powder material at high temperatures. This pyrolysis process can provide thin amorphous carbon coatings, on the order of a few nanometers thick, that are completely devoid of the sp2 hybridization found in crystalline graphene-based materials. Amorphous carbon is shown in the third bar of Figure 3 and exhibits an I of greater than 1.2. D / I G It has a ratio.

[0048] Low-defect turbostratic carbon, also known as graphene, has unique properties resulting from its manufacturing process. One common method for producing this material is via a plasma-based CVD process, in which a hydrocarbon feedstock gas is passed through an inert gas plasma in the presence of a catalyst capable of nucleating graphene-like carbon structures. By controlling the manufacturing parameters, carbon materials with few layers and no interstitial AB stacking order can be produced. These carbon materials typically have a highly ordered sp2 carbon lattice with low defect density.

[0049] The low-defect turbostratic carbon of the present disclosure is shown in the second bar in the center of Figure 3. The Raman spectrum of the low-defect turbostratic carbon additive of the present application shows the intensity ratio of the D band to the G band (I D / I G ) and the intensity ratio between the 2D band and the G band (I 2D / I G ) is derived from I D , I 2D , and I G are expressed by their respective integrated intensities. D / I G The ratio of 1580 to 1600 cm indicates a low defect material. -1 I at wavenumbers in the range between G , 1330 and 1360cm -1 I at wavenumbers in the range between D and an I of greater than 0 and less than or equal to about 0.8 as measured using an incident laser wavelength of 532 nm. D / I G Furthermore, the low defect turbostratic carbon material of the present disclosure has an I ratio of about 0.4 or greater. 2D / I G Shows the ratio. I 2D / I G As a guide for ratios, typically, an I of about 2 2D / I G The ratio is related to monolayer graphene. I less than about 0.4 2D / I GThe ratio is typically associated with bulk graphite consisting of many AB-stacked graphene layers. Therefore, an I of about 0.4 or greater for the low-defect turbostratic carbon materials of the present disclosure. 2D / I G The ratio indicates a small number of layers, 10 or less. Low-defect turbostratic carbon materials with a small number of layers further lack the AB stacking order between the graphene layers (i.e., turbostratic). The turbostratic nature or lack of AB stacking in these graphene planes is explained by I 2D What distinguishes turbostratic and AB-stacked graphene layered materials is the symmetry of the 2D peaks, which indicates the disorder of the rotated stacking versus the order of the layered stacking.

[0050] Carbon materials with high AB stacking order still exhibit 2D peaks, but these 2D peaks exhibit doublets that break the peak symmetry. This break in symmetry is exhibited in both few-layer AB-stacked graphene and many-layer graphite. Therefore, regardless of the number of graphene layers present in a material, the 2D peak, which is a very strong indicator of stacking order, is important when selecting graphene or graphene-based additives. It is the rotational disorder of stacking in the low-defect turbostratic carbon of the present disclosure that distinguishes it from all other graphenes or graphene-based additives used to date. This rotational disorder of the low-defect turbostratic carbon stacking of the present disclosure provides flexibility to the carbon-based particles, thereby enabling them to provide and maintain contact with the active core particles of the composite particles that make up the electrodes of electrochemical cells. This results in electrochemical cells with increased cycle life, better cycle life stability, improved energy density, and superior high-rate capability.

[0051] 4A-4C show SiO encapsulated or coated by carbon materials. x Figure 4A shows the Raman spectrum of an active material mixture containing a core particle. xFigure 4B is a graph of the Raman spectrum of an active material mixture containing core particles. x 4C is a graph of the Raman spectrum of an active material mixture containing a core particle. x 1 is a graph showing the Raman spectrum of an active material mixture containing core particles. -1 size, shape, and position of the 2D peak near the wavelength of 1340 cm -1 Each spectrum is different because the size of the nearby D peaks (the size of the peaks) is different.

[0052] Preparation of the Raman analysis samples involved taking small aliquots of powders, such as active material powders, composite material powders, and carbon material powders, and placing these powders individually in clean glass vials. The sample powders were rinsed with methanol. The powder / methanol solution was then briefly vortexed and sonicated for approximately 10 minutes. The suspension was then transferred to a glass slide with a micropipette. The slide was then allowed to air dry completely before analysis.

[0053] The Raman spectroscopy analysis in this application is performed using confocal Raman spectroscopy on a Bruker Senterra Raman system under the following test conditions: 532 nm laser, 0.02 mW, 50x objective, 90 s integration time, 50 x 1000 μm aperture, and 9-18 cm -1 Three co-doping runs (three Raman spectroscopy sample runs) using a resolution of 100 kHz. For reference, the D band is not active in Raman scattering in perfect crystals. The D band becomes Raman active in defective graphitic materials by a defect-induced double-resonance Raman scattering process involving π-π electronic transitions. The intensity of the D band relative to the G band increases with the degree of disorder. Thus, the intensity I D / I G The ratio can be used to characterize the graphene material.

[0054] Both the D and G bands of amorphous carbon shown in Figure 4A are more intense than either the D and G bands of reduced graphene oxide (rGO) in Figure 4B or the D and G bands of turbostratic carbon in Figure 4C. Amorphous carbon has a significantly higher I than rGO and turbostratic carbon. D / I G The ratio (1.25) is also present. The suppressed intensity of the G band of amorphous carbon compared to the intensity of the D band reflects the lack of crystallinity within its carbon structure (also known as graphitic properties). The higher D peak intensity than the G peak intensity is caused by a higher amount of defects in the amorphous carbon network. Thus, the spectrum of amorphous carbon exhibits a lower degree of crystallinity and a much higher degree of disorder in its graphitic network compared to more crystalline carbons such as graphene, graphene oxide, and rGO. Furthermore, its higher D peak intensity compared to the G peak of rGO, as well as the D and G peak intensities and I of turbostratic carbon, D / I G The I of rGO is higher compared to the ratio D / I G The ratio (almost double) indicates that rGO has more defects than the turbostratic carbon of the present application.

[0055] Table 1 below details the Raman spectra of Figures 4A-4C.

[0056] [Table 1]

[0057] Careful examination of these spectra shows that increasing disorder broadens the D band and changes the relative intensities of the bands. For the amorphous carbon-coated sample, the intense (6194.8) and broad D peak indicates a large amount of defects. The lower intensity of the G peak (4908.2) compared to the D peak (6194.8) indicates a lack of crystallinity. The D peak intensities (9115.5) and G peak intensities (10033.3) for the rGO-encapsulated sample are very similar. However, it is noteworthy that the D peak intensity (9115.5) for the rGO sample is significantly higher than the D peak intensity (2915.3) for the turbostratic carbon sample, indicating that the rGO sample has a significantly higher defect density than the turbostratic carbon sample. Also noteworthy is that the G bands for the amorphous carbon and rGO samples are at wavelengths of 1589.4 cm, respectively. -1 and 1597.82 cm -1 and wavelength 1584 cm -1 The G band of the turbostratic carbon sample is shifted to the right at 1581.32 cm -1 1584cm -1 Importantly, unlike the amorphous carbon and rGO samples, the turbostratic carbon (in this case the graphene sample) exhibits little, if any, position shift, reflecting the low number of defects within it, making the turbostratic carbon sample very similar to a nearly "perfect" turbostratic carbon material.

[0058] Composite particle formation According to various embodiments, the active material composite particles may be formed by forming a composite mixture including a core particle of an active material, such as an M-SiO active material, a graphene material, and optionally one or more additives, such as CNTs, dispersants, binders, etc.

[0059] In particular, the composite mixture can include a composite suspension formed by first mixing a first suspension including core particles dispersed in a polar solvent, such as water or ethanol, with a second suspension including a graphene material dispersed in a polar solvent. The graphene material can include turbostratic carbon, such as turbostratic graphene. In various embodiments, the graphene material can include graphene, graphene oxide, partially reduced graphene oxide, or a combination thereof.

[0060] In some embodiments, the mixture can be stabilized by mixing and / or sonicating until the mixture is visibly uniform. For example, to enhance the stability of the suspension, the first mixture can be sonicated or high-shear mixed for about 30 to about 90 minutes, e.g., about 60 minutes.

[0061] The first suspension may comprise about 0.5% to about 10% by weight, e.g., about 1% to about 5% by weight, or about 2% by weight, of M-SiO particles and the remainder being solvent, based on the total weight of the first suspension. The second suspension may comprise about 0.5% to about 10% by weight, e.g., about 1% to about 5% by weight, or about 2% by weight, of graphene material and the remainder being solvent, based on the total weight of the second suspension.

[0062] The amounts of the first and second suspensions used to form the composite mixture can be selected so that the composite mixture has a core particle to carbon weight ratio ranging from about 80:20 to about 95:05, for example, from about 90:10 to about 95:05. To enhance the stability of the suspension, the composite mixture can be sonicated or high shear mixed for about 30 to about 90 minutes, for example, about 60 minutes.

[0063] In some embodiments, CNTs may optionally be added to either the first or second suspension, or directly to the composite mixture. For example, the amount of CNTs may be selected so that the composite mixture has a core particle to CNT weight ratio of from about 100:0 to about 95:3, such as from about 99.9:0.1 to about 99:1, or about 99:1.

[0064] The composite mixture can be processed to coat the core particles with graphene material and, optionally, CNTs. For example, the mixture can be dried using various processes, such as a spray-drying process, to evaporate the solvent and produce a powder containing composite particles including core particles coated with carbon, e.g., turbostratic carbon, e.g., turbostratic graphene. In particular, the composite mixture can be fed through a heated aerosol evaporator to evaporate the solvent and form the composite particles. This process causes the graphene material to be isotropically compressed by capillary forces, which completely collapse it, transforming it into a collapsed structure with countless wrinkles, bends, and twists that do not relax over time.

[0065] Depending on the requirements for the final powder particles, process parameters can vary. For example, collapsed ball-like composite particles can be formed by aerosolizing droplets and then rapidly drying them in a heated chamber. For example, a feedstock suspension can be atomized using an atomizer to form aerosol droplets. The atomization step requires atomization parameters sufficient to order the particles within the droplets before the aerosol begins to evaporate. In the case of turbostratic carbon materials, the particles within the droplets migrate to the droplet's surface and form a coating on the M-SiO particles upon drying. This coating minimizes particle aggregation and agglomeration because this structure overcomes the strong interparticle van der Waals forces that cause the carbon material sheets to re-stack. However, this re-stack complicates solution processability and reduces the accessible surface area of ​​the particles. This structure is also stable against spreading or collapse.

[0066] Once the evaporation process is complete, the composite particles may be collected as a powder. After collection, the powder may be heat-treated in an inert atmosphere, such as argon gas, to carbonize any remaining surfactant or dispersant. In particular, the powder may be heated to a temperature ranging from about 600°C to about 800°C, for example, from about 650°C to about 750°C, or about 700°C. The heating process may have a heating ramp rate ranging from about 5°C / min to about 20°C / min, for example, about 10°C / min. The resulting dry composite active material powder may then be classified by sieving or filtration to achieve the particle size distribution desired for a given application.

[0067] Alternatively, the composite mixture may be formed by dispersing core particles in a liquid solvent such as water or ethanol to form a first suspension. A polyelectrolyte, such as polydiallyldimethylammonium chloride (PDDA), polyacrylic acid (PAA), or polystyrenesulfonate (PSS), may be added to the solvent before or after adding the active material particles to form a first surface charge on the active material particles, thereby stably suspending the active material particles in the solvent. A second suspension may be formed by dispersing a carbon material (e.g., turbostratic graphene powder) in a solvent such as water or ethanol. An oppositely charged polyelectrolyte may be added to the solvent before or after adding the graphene to form a second surface charge on the graphene, thereby stably suspending the graphene in the solvent. The first and second surface charges may be different positive and negative charges.

[0068] In some embodiments, the composite mixture may be formed by combining the first and second suspensions such that the charge difference between the first and second suspensions causes the graphene to be attracted to the surface of the core particles, thereby forming composite particles comprising graphene-coated active material particles. The polyelectrolyte and active material particles on the graphene may neutralize each other so that the composite particles are substantially free of charge.

[0069] In various embodiments, the composite mixture may alternatively be formed by forming a dry mixture including a carbon material (e.g., turbostratic graphene powder) and core particles, without a liquid solvent (i.e., the composite mixture is not a suspension). A binder material may be added to the mixture, followed by a mechanofusion process. In particular, the binder material may be physically mixed with the graphene powder and core particles to form the composite particles, such that the core particles are coated with graphene using a binder.

[0070] Non-limiting examples of binder materials include polymethyl methacrylate, polyethylene, polypropylene, polystyrene, polytetrafluoroethylene, polyvinylidene fluoride, polyethylene terephthalate, polyacrylonitrile, polydiallyldimethylammonium chloride, polyacrylic acid, lithiated polyacrylic acid (LiPAA), polysodium styrene sulfonate, polyvinylpyrrolidone, polyethylene glycol, polyethylene oxide, nylon, carboxymethyl cellulose, polysiloxane, polyaramid, polyamide, polyimide, polyacrylate, polycarbonate, polyurethane, and polyacetylene. , polypyrrole, polyphenylene sulfide, poly(3,4-ethylenedioxythiophene), poly(1,3-dioxolane), polyphenylene vinylene, polythiophene, polyaniline, polyfluorene, propylene, petroleum coke, coal tar pitch, carbon black, carbon nanotubes, sucrose, silica, indium tin oxide, aluminum doped zinc oxide, lithium hydroxide, lithium acetate, lithium perchlorate, lithium fluoride, lithium nitride, lithium nitrate, lithium hexafluorophosphate, LiTFSI, LiFSI, NASICON, LISICON, LIPON, Li3PO4, Li7P3S 11 , perovskites, garnets, polymerized ionic liquids, or any combination thereof.

[0071] In various embodiments, particles of M-SiO material and a carbon material containing low-defect turbostratic carbon may be dry-mixed at a dry weight ratio between 7:3 and 99:1, as compared to other embodiments. In some embodiments, CNTs may be added to the dry mixture. For example, the M-SiO material, carbon material, and, optionally, CNTs may be combined to form a dry mixture without a liquid solvent or a wet mixture containing a liquid solvent. For example, in some embodiments, the M-SiO material and carbon material may be suspended in a polar liquid solvent, such as water or ethanol, by high-shear mixing or ultrasonication. The suspension of some materials may also be facilitated by the use of surfactants and / or binders. Importantly, the high conductivity enabled by the low-defect turbostratic structure allows for a smaller ratio of material to be mixed with the electrochemically active material to achieve comparable conductivity enhancement compared to other carbon additives (as low as <90:10 and 99:1).

[0072] Electrodes and electrochemical cells According to various embodiments, the composite particles can be used as an active material in an electrode, such as an anode. For example, the composite particles can be mixed with a conductive agent, a binder, and / or a solvent to form a slurry. The slurry can be coated onto a current collector to form an electrode.

[0073] The conductive agent may include low-defect turbostratic carbon materials, carbon black, graphite, graphite oxide, graphene, exfoliated graphite or graphene, graphene oxide, rGO, partially reduced GO, carbon nanotubes (CNTs) such as single-walled, double-walled, or multi-walled CNTs, graphene platelets, nanoplatelets or nanoparticles, nanoplatelets or nanoparticles comprising one or several graphene sheets, or combinations thereof.

[0074] The electrode can contain a composite material mix capable of providing 100% anode lithium capacity, or it can be mixed with other lithium-active materials, such as graphite, graphite oxide, graphene, graphene oxide, rGO, and partially reduced GO, in a 0-100% mixture. When the electrode contains a binder to hold the electrode materials together, the binder can include a polymer material, such as polyvinylidene fluoride (PVDF), carboxymethyl cellulose (CMC), styrene butadiene rubber (SBR), CMC / SBR, polyacrylic acid (PAA), lithium polyacrylic acid (LiPAA), or a combination thereof. The electrode material components are then mixed in a polar solvent, such as water or N-methyl-2-pyrrolidone (NMP), at a solids loading ranging from about 20% to about 60% by weight to form an electrode slurry.

[0075] Mixing is typically achieved using a planetary mixer and high-shear dispersion blades. The electrode slurry is then coated onto a metal substrate, typically copper or aluminum, at the appropriate mass loading to balance the lithium capacity of the anode with the selected cathode. Coating can be performed using a variety of equipment, including doctor blades, comma coaters, gravure coaters, and slot die coaters. After coating, the slurry is dried under forced air between room temperature and about 120°C. Prior to battery assembly, the final electrode processing step involves pressing the electrode to reduce internal porosity and slitting it to the appropriate shape. Typical anode press densities can range from about 1.0 g / cc to about 1.7 g / cc, depending on the electrode composition and target application. Cathode press densities can range from about 2.7 to about 4.7 g / cc.

[0076] In various embodiments, the electrode is an anode electrode of an electrochemical cell, which also includes a cathode and a non-aqueous electrolyte containing a lithium salt. The anode includes a metalloid or metal oxide material. The anode further includes a low-defect turbostratic carbon material. The anode may include composite particles. The composite particles may further include a collapsed ball-like structure, the collapsed structure including a low-defect turbostratic carbon material encapsulating a metalloid or metal oxide material within its core. The anode may include an anode material mixture having alternating particles including a metalloid or metal oxide material and particles including a turbostratic carbon material. The turbostratic carbon material may include low-defect turbostratic carbon sheets enveloping and / or bonded to at least some of the core particles including a metalloid or metal oxide material. The cathode may include a carbon-based material. In addition to conventional carbon-based materials used in cathode electrodes of electrochemical cells, it is believed that the low-defect turbostratic carbon material of the present application may also be used as an additive to the cathode electrode of an electrochemical cell.

[0077] Construction of an electrochemical cell involves pairing a coated anode substrate and a coated cathode substrate, electronically insulated from each other by a polymeric and / or ceramic electrically insulating separator. The electrode assembly is sealed within a housing, which may be of various configurations, such as, but not limited to, a coin cell, pouch cell, or can cell, and contains a non-aqueous, ionically conductive electrolyte operatively associated with the anode and cathode. The electrolyte consists of an inorganic salt dissolved in a non-aqueous solvent, more preferably an alkali metal salt dissolved in a mixture of a low-viscosity solvent containing organic esters, ethers, and dialkyl carbonates, and a highly conductive solvent containing cyclic carbonates, cyclic esters, and cyclic amides. Non-limiting examples of electrolytes include lithium hexafluorophosphate (LiPF6) or lithium bis(fluorosulfonyl)imide (LiFSi) salts in an organic solvent containing ethylene carbonate (EC), diethyl carbonate (DEC), dimethyl carbonate (DMC), fluoroethylene carbonate (FEC), or a combination thereof. Additional solvents useful in embodiments of the present invention include dialkyl carbonates such as tetrahydrofuran (THF), methyl acetate (MA), diglyme, trigylum, tetragylum, 1,2-dimethoxyethane (DME), 1,2-diethoxyethane (DEE), 1-ethoxy, 2-methoxyethane (EME), ethyl methyl carbonate, methyl propyl carbonate, ethyl propyl carbonate, dipropyl carbonate, and combinations thereof. High-dielectric constant solvents that may also be useful include cyclic carbonates, cyclic esters, and cyclic amides such as propylene carbonate (PC), butylene carbonate, acetonitrile, dimethyl sulfoxide, dimethylformamide, dimethylacetamide, gamma-valerolactone, gamma-butyrolactone (GBL), N-methyl-2-pyrrolidone (NMP), and combinations thereof. The electrolyte serves as a medium for the movement of lithium ions between the anode and cathode during the battery's electrochemical reactions, particularly during the battery's discharging and recharging. Electrochemical cells may also have positive and negative terminals and / or contact structures.

[0078] Example (Li-metallized SiO) The following examples relate to anodes formed using various embodiment anode active materials (e.g., composite particles) and comparative anode active material particles of the present disclosure and are provided by way of illustration and not limitation. In the examples, % is weight percent, g is grams, CE is coulombic efficiency, and mAh / g is capacity. Additionally, the M-SiO active material used in Formulations 1-4, Examples 1-4, and the Control Example below includes lithium metallized SiO (LM-SiO).

[0079] Compound: 1 The composite active material of Formulation 1 was synthesized by suspending 2 grams of LM-SiO in 98 grams of water to produce a 2 wt% suspension. The LM-SiO suspension was sonicated for 60 minutes to improve the stability of the suspension. After sonication, 11.11 grams of a 2 wt% graphene suspension was added to the LM-SiO suspension to produce a homogeneous 2 wt% composite suspension. The ratio of LM-SiO to the graphene suspension was selected to result in a 90:10 LM-SiO:graphene mass ratio. The composite suspension was then sonicated for another 60 minutes. After sonication, the composite suspension was then fed through a heated aerosol evaporator to evaporate the water and produce graphene-coated LM-SiO particles. After collecting the powder, the material was subjected to heat treatment at 700 °C for 1 hour (heat ramp of 10 °C / min) under an argon atmosphere to remove residual water and carbonize the surfactant present in the stabilized graphene suspension. The resulting composite active material of Formulation 1 was then collected.

[0080] Compound: 2 The composite active material of Formulation 2 was synthesized by suspending 2 grams of LM-SiO in 98 grams of water to produce a 2 wt% suspension. The LM-SiO suspension was sonicated for 60 minutes to improve the stability of the suspension. After sonication, 11.11 grams of a 2 wt% graphene oxide (GO) suspension was added to the LM-SiO suspension to produce a homogeneous 2 wt% composite suspension. The ratio of the LM-SiO to GO suspension was selected to produce a 90:10 mass ratio of LM-SiO:reduced graphene oxide. The composite suspension was then sonicated for another 60 minutes. After sonication, the composite suspension was then fed through a heated aerosol evaporator to evaporate the water and produce graphene-coated LM-SiO particles. After collecting the powder, the material was subjected to heat treatment at 700 °C for 1 hour (heat ramp of 10 °C / min) under an argon atmosphere to remove residual water and carbonize the surfactant present in the stabilized graphene suspension. The resulting composite active material of Formulation 2 was then collected.

[0081] Compound: 3 The composite active material of Formulation 3 was synthesized by suspending 2 grams of LM-SiO in 98 grams of water to produce a 2 wt% suspension. The LM-SiO suspension was sonicated for 60 minutes to improve the suspension's stability. After sonication, 10.78 grams of a 2 wt% graphene suspension and 6.66 mg of carbon nanotubes (CNTs) were added to the LM-SiO suspension to produce a homogeneous 2 wt% composite suspension. The ratio of LM-SiO to graphene suspension was selected to produce a mass ratio of 90:9.7:0.3 LM-SiO:graphene:CNT. The composite suspension was then sonicated for another 60 minutes. After sonication, the composite suspension was then fed through a heated aerosol evaporator to evaporate the water and produce graphene-coated LM-SiO particles. After collecting the powder, the material was then subjected to heat treatment at 700 °C for 1 hour (heat ramp of 10 °C / min) under an argon atmosphere to remove residual water and carbonize the surfactant present in the stabilized graphene suspension. The resulting composite active material of Formulation 3 was then collected.

[0082] Compound: 4 The composite active material of Formulation 4 was synthesized by suspending 2 grams of LM-SiO in 98 grams of water to produce a 2 wt% LM-SiO suspension. Additionally, 0.1 g of a polymeric dispersant was added to the suspension to improve stability. The LM-SiO suspension was sonicated for 60 minutes to improve the suspension's stability. After sonication, 11.11 grams of a 2 wt% graphene suspension was added to the LM-SiO suspension to produce a homogeneous 2 wt% composite suspension. The ratio of LM-SiO to the graphene suspension was selected to result in a 90:10 LM-SiO:graphene mass ratio. The composite suspension was then sonicated for another 60 minutes. After sonication, the composite suspension was then fed through a heated aerosol evaporator to evaporate the water and produce graphene-coated LM-SiO particles. After collecting the powder, the material was then subjected to heat treatment at 700 °C for 1 hour (heat ramp of 10 °C / min) under an argon atmosphere to remove residual water and carbonize the surfactant present in the stabilized graphene suspension. The resulting composite active material of Formulation 4 was then collected.

[0083] Control Formulation A control anode active material was prepared by combining 0.5 grams of LM-SiO anode active material with 1.3 grams of graphite, 0.04 grams of conductive agent (C65 carbon black), 7.72 grams of aqueous binder (CMC 1.1 wt %), and 0.1875 grams of 40 wt % SBR in a small mixing jar, and then vigorously mixing the combined materials in a planetary mixer for 30 minutes to form a control formulation slurry.

[0084] Control example The control anode slurry was coated onto copper foil at a loading of 3 mAh / cm2 and an electrode density of 1.3 g / cc. The coating was dried and calendered to a porosity of 40-45%. The electrode coating was assembled into a half-cell (excess counterelectrode material = lithium metal), and 100 μL of electrolyte was injected into the cell. The cell was electrochemically "formed" with C / 20, C / 10, and C / 5 charge-discharge cycles. The resulting half-cell was then characterized under a standard C / 2 charge-discharge protocol until the anode capacity reached 80% of its initial capacity.

[0085] Example 1 The anode material was prepared by combining 0.5 grams of the composite anode active material from Formulation 1 with 1.3 grams of graphite, 0.04 grams of conductive agent (C65 carbon black), 7.72 grams of aqueous binder (1.1 wt% carbon methyl cellulose (CMC)), and 0.1875 grams of 40 wt% SBR in a small mixing jar. The combined materials were then vigorously mixed in a planetary mixer for 30 minutes. The resulting anode slurry was coated onto copper foil at a loading of 3 mAh / cm2 and an electrode density of 1.3 g / cc. The coating was dried and calendared to a porosity of 40-45%. The electrode coating was assembled into a half-cell (excess counterelectrode material = lithium metal), and 100 μL of electrolyte was injected into the cell. The cell was electrochemically "formed" by charging and discharging at C / 20, C / 10, and C / 5 cycles. The resulting half-cell was then characterized under a standard C / 2 charge-discharge protocol until the anode capacity was 80% of its initial capacity.

[0086] Example 2 The anode material was prepared by combining 0.5 grams of the composite anode active material from Formulation 2 with 1.3 grams of graphite, 0.04 grams of conductive agent (C65 carbon black), 7.72 grams of aqueous binder (CMC 1.1 wt%), and 0.1875 grams of 40 wt% SBR in a small mixing jar. The combined materials were then vigorously mixed in a planetary mixer for 30 minutes. The resulting anode slurry was coated onto copper foil at a loading of 3 mAh / cm² and an electrode density of 1.3 g / cc. The coating was dried and calendared to a porosity of 40-45%. The electrode coating was assembled into a half-cell (excess counterelectrode material = lithium metal), and 100 μL of electrolyte was injected into the cell. The cell was electrochemically "formed" by charging and discharging at C / 20, C / 10, and C / 5 cycles. The resulting half-cell was then characterized under a standard C / 2 charge-discharge protocol until the anode capacity was 80% of its initial capacity.

[0087] Example 3 The anode material was prepared by combining 0.5 grams of the composite anode active material of Formulation 3 with 1.3 grams of graphite, 0.04 grams of conductive agent (C65 carbon black), 7.72 grams of aqueous binder (CMC 1.1 wt%), and 0.1875 grams of 40 wt% SBR in a small mixing jar. The combined materials were then vigorously mixed in a planetary mixer for 30 minutes. The resulting anode slurry was coated onto copper foil at a loading of 3 mAh / cm² and an electrode density of 1.3 g / cc. The coating was dried and calendared to a porosity of 40-45%. The electrode coating was assembled into a half-cell (excess counterelectrode material = lithium metal), and 100 μL of electrolyte was injected into the cell. The cell was electrochemically "formed" by charging and discharging at C / 20, C / 10, and C / 5 cycles. The resulting half-cell was then characterized under a standard C / 2 charge-discharge protocol until the anode capacity was 80% of its initial capacity.

[0088] Example 4 The anode material was prepared by combining 0.5 grams of the composite anode active material from Formulation 4 with 1.3 grams of graphite, 0.04 grams of conductive agent (C65 carbon black), 7.72 grams of aqueous binder (CMC 1.1 wt%), and 0.1875 grams of 40 wt% SBR in a small mixing jar. The combined materials were then vigorously mixed in a planetary mixer for 30 minutes. The resulting anode slurry was coated onto copper foil at a loading of 3 mAh / cm² and an electrode density of 1.3 g / cc. The coating was dried and calendared to a porosity of 40-45%. The electrode coating was assembled into a half-cell (excess counterelectrode material = lithium metal), and 100 μL of electrolyte was injected into the cell. The cell was electrochemically "formed" by charging and discharging at C / 20, C / 10, and C / 5 cycles. The resulting half-cell was then characterized under a standard C / 2 charge-discharge protocol until the anode capacity was 80% of its initial capacity.

[0089] 5 is a graph showing the electrochemical cycling performance of half-cells formed using a control formulation (Control) and formulations 1-4 (Examples 1-4). As described in detail below, the anode of the control half-cell contained 25 wt. % bare LM-SiO material, and the anodes of the half-cells of Examples 1-4 contained 25 wt. % graphene-coated LM-SiO material of Formulations 1-4, respectively. The anodes of the control and Example 1-4 half-cells also contained 65 wt. % graphite, 2 wt. % C65, 4.25 wt. % CMC, and 3.75 wt. % styrene-butadiene rubber (SBR).

[0090] Table 2 below contains the electrochemical cycling performance of the half-cells shown in FIG.

[0091] [Table 2]

[0092] Table 3 below contains the electrochemical cycling values ​​for the half-cells shown in FIG.

[0093] [Table 3]

[0094] As can be seen in FIG. 5 and Tables 2 and 3, after 50 charge / discharge cycles, compared to the half-cell containing the control material, the half-cell containing the material from Formulation 1 showed a 67% improvement in cycle life, the half-cell containing the material from Formulation 2 showed an 84% improvement in cycle life, the half-cell containing the material from Formulation 3 showed a 95% improvement in cycle life, and the half-cell containing the material from Formulation 4 showed a 72% improvement in cycle life.

[0095] Thus, the composite particles of the present invention unexpectedly provided a significant increase in the usable cycle life of LM-SiO materials for commercial lithium-ion battery applications. This improved usable cycle life is due to the unexpected and unobvious ability of graphene to stabilize lithium-containing SiO active materials against electrochemical cycling. Usable cycle life is defined as the number of cycles (cycle n) that a battery can be cycled while retaining at least 80% of its initial capacity (i.e., cycle 1). For example, Formulation 4 exhibited a half-cell cycle life of approximately 50 cycles (n=50) to 80% capacity retention (cycle 1 is an initial capacity of approximately 600 mAh / g, so 480 mAh / g = 80% capacity retention). In contrast, the control material exhibited a half-cell cycle life of only 5 cycles to 80% capacity retention.

[0096] According to an embodiment, the battery has a 50th cycle capacity retention of at least 72%, eg, 80-84%, and a first cycle efficiency of at least 87%, eg, 87-88.6%.

[0097] Figure 6 is a graph showing the X-ray diffraction results for the control material (shown in grey) compared to the material (shown in black) of Example 1. As can be seen in Figure 6, no changes to the crystallinity and structure of the particles were observed with the addition and treatment of graphene.

[0098] Example (Mg-metallized SiO) The following examples relate to anodes formed using various embodiment anode active materials (e.g., composite particles) and comparative anode active material particles of the present disclosure and are provided by way of illustration and not limitation. In the examples, % is weight percent, g is grams, CE is coulombic efficiency, and mAh / g is capacity. Additionally, the M-SiO active material used in Formulation 5, Example 5, and the control examples below includes magnesium-metallated SiO (MM-SiO).

[0099] Formulation 5: The composite active material of Formulation 5 was synthesized by suspending 2 grams of MM-SiO (i.e., magnesium-containing silicon oxide) in 98 grams of water to produce a 2 wt% suspension. The MM-SiO suspension was sonicated for 60 minutes to improve the suspension stability. After sonication, 5.05 grams of a 2 wt% graphene suspension and 4.21 mg of carbon nanotubes (CNTs) were added to the MM-SiO suspension to produce a homogeneous 2 wt% composite suspension. The ratio of MM-SiO to graphene suspension was selected to result in a mass ratio of 95:4.8:0.2 MM-SiO:graphene:CNT. The composite suspension was then sonicated for an additional 60 minutes. After sonication, the composite suspension was then passed through a heated aerosol evaporator to evaporate the water and produce graphene-coated MM-SiO particles. After collecting the powder, the material was then subjected to heat treatment at 700 °C for 1 h (heat ramp of 10 °C / min) under argon atmosphere to remove residual water and carbonize the surfactant present in the stabilized graphene suspension. The resulting composite active material of Formulation 5 was then collected.

[0100] Example 5: Anode material was produced by combining 0.5 grams of the composite anode active material of Formulation 5 with 0.033 grams of conductive agent (C65 carbon black) and 1.33 grams of aqueous binder (LiPAA, 10 wt%) in a small mixing jar. The combined materials were then vigorously mixed in a planetary mixer for 30 minutes. The resulting anode slurry was coated onto copper foil at a loading of 3 mAh / cm2 and an electrode density of 1.3 g / cc. The coating was dried and calendared to a porosity of 40-45%. The electrode coating was assembled into a half-cell (excess counterelectrode material = lithium metal), and 100 μL of electrolyte was injected into the cell. The cell was electrochemically "formed" through charge-discharge cycles of C / 20, C / 10, and C / 5. The resulting half-cell was then characterized under a standard C / 2 charge-discharge protocol until the anode capacity reached 80% of its initial capacity.

[0101] MM-SiO Control Example: Anode active material was prepared by combining 0.5 grams of MM-SiO anode active material with 0.033 grams of conductive agent (C65 carbon black) and 1.33 grams of aqueous binder (LiPAA, 10 wt%) in a small mixing jar. The combined materials were then vigorously mixed for 30 minutes in a planetary mixer. The resulting anode slurry was coated onto copper foil at a loading of 3 mAh / cm2 and an electrode density of 1.3 g / cc. The coating was dried and calendared to a porosity of 40-45%. The electrode coating was assembled into a half-cell (excess counterelectrode material = lithium metal), and 100 μL of electrolyte was injected into the cell. The cell was electrochemically "formed" through charge-discharge cycles of C / 20, C / 10, and C / 5. The resulting half-cell was then characterized under a standard C / 2 charge-discharge protocol until the anode capacity reached 80% of its initial capacity.

[0102] Figure 7 is a graph showing the capacity retention of cycled half-cells containing the MM-SiO material of Formulation 5 and the MM-SiO control example, and Figure 8 is a graph showing the anode capacity of the cycled half-cells of Figure 7. Referring to Figures 7 and 8, it can be seen that Formulation 5 provided significantly better anode capacity and capacity retention than the MM-SiO control example.

[0103] While the foregoing refers to certain preferred embodiments, it will be understood that the invention is not so limited. Those skilled in the art will recognize that various modifications can be made to the disclosed embodiments and that such modifications are intended to be within the scope of the invention. All publications, patent applications, and patents cited herein are incorporated herein by reference in their entirety.

Claims

1. An active material composite particle for a lithium ion secondary battery, the composite particle comprising: a core particle comprising an alkali metal silicate or an alkaline earth metal silicate; a coating disposed on the surface of the core particle wherein the coating comprises 1330 cm -1 and 1360 cm -1 The peak intensity (I D ) D band having 1580 cm -1 and 1600 cm -1 The peak intensity (I G ) G band, and 2650 cm -1 and 2750 cm -1 The peak intensity (I 2D ) 2D bands having I D / I G the ratio is in the range of greater than 0 to 1.1; I 2D / I G The ratio is in the range of 1.03 to 2. Active material composite particles comprising turbostratic carbon having a Raman spectrum.

2. the core particle comprises from 80 wt% to 99.5 wt% of the total weight of the composite particle; the coating comprises from 0.5% to 20% by weight of the total weight of the composite particle; and 10. The composite particle of claim 1, wherein the turbostratic carbon comprises from 1% to 10% by weight of the total weight of the particle.

3. 90% to 100% by weight of the turbostratic carbon is in the form of platelets comprising from 1 to 10 graphene sheets; and 10. The composite particle of claim 1, wherein the coating further comprises from 0.1 wt% to 1 wt% carbon nanotubes (CNTs) based on the total weight of the composite particle.

4. The composite particle of claim 1 , wherein at least a portion of the core particle is completely encapsulated by a corresponding coating.

5. The composite particle of claim 1 , wherein at least a portion of the core particle is only partially encapsulated by a corresponding coating.

6. A composite particle as described in claim 1 having an average particle size in the range of 3 μm to 10 μm.

7. The core particle is Li 2 Si 2 O 5 , Li 2 SiO 3 , Li 4 SiO 4 or any combination thereof; and crystalline silicon domains dispersed within the primary phase; and The composite particle of claim 1 , comprising:

8. The core particles are SiO dispersed within the primary phase. x 8. The composite particle of claim 7, further comprising a region, wherein x is in the range of 0.8 to 1.

2.

9. The primary phase is Li 2 Si 2 O 5 Including, the crystalline silicon domains have an average grain size of less than 100 nm; The composite particle according to claim 7 .

10. The core particle is MgSiO 3 , Mg 2 SiO 4 or a combination thereof; and crystalline silicon domains dispersed within the primary phase; and The composite particle of claim 1 , comprising:

11. I D / I G The ratio is in the range of 0.3 to 0.7, I 2D / I G The ratio is in the range of 1.03 to 1.2, I D But 1340cm -1 At the wave number of I G But 1584 cm -1 At the wave number of I 2D But 2700 cm -1 At the wave number of The composite particle according to claim 1 .

12. The composite particle of claim 1, and binder an electrode.

13. the binder comprises polytetrafluoroethylene (PTFE), polyvinylidene fluoride (PVDF), poly(acrylic) acid, polyethylene tetrafluoroethylene (ETFE), polyamide, and polyimide, polyethylene, carboxymethyl cellulose (CMC), styrene butadiene rubber (SBR), polyacrylic acid (PAA), lithium polyacrylic acid (LiPAA), or a mixture thereof; and 13. The electrode of claim 12, further comprising a conductive additive selected from the group consisting of carbon black, carbon nanotubes, conductive polymers, graphite, metal powders, nickel, aluminum, titanium, stainless steel, and any combination thereof.

14. an anode comprising the electrode of claim 12; a cathode; a casing that houses the anode and cathode; an electrolyte disposed between the anode and the cathode; and having a 50th cycle capacity retention of at least 72% and a first cycle efficiency of at least 87%.

15. 1. A method for forming active material composite particles, comprising: forming a mixture comprising core particles comprising an alkali metal silicate or an alkaline earth metal silicate and turbostratic carbon; and treating the mixture to form composite particles comprising the core particles coated with the turbostratic carbon; Including, The turbostratic carbon is 1330 cm -1 and 1360 cm -1 The peak intensity (I D ) D band having 1580 cm -1 and 1600 cm -1 The peak intensity (I G ) G band, and 2650 cm -1 and 2750 cm -1 The peak intensity (I 2D ) 2D bands having I D / I G the ratio is in the range of greater than 0 to 1.1; I 2D / I G The ratio is in the range of 1.03 to 2. having a Raman spectrum, method.

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