Powder for use in battery negative electrodes and batteries containing such powders
The use of a silicon-based powder with controlled porosity in battery negative electrodes addresses the volume expansion issue, improving cycle life and efficiency by minimizing SEI formation and maintaining high coulombic efficiency in lithium-ion batteries.
Patent Information
- Application Number
- JP2023580571
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2021-07-02
- Filing Date
- 2022-06-30
- Publication Date
- 2025-08-21
- Estimated Expiration
- 2042-06-30
AI Technical Summary
Silicon-based anode materials in lithium-ion batteries experience significant volume expansion during charging and discharging, leading to mechanical degradation, poor cycling performance, and reduced battery life due to the formation of a thick solid electrolyte interface (SEI), which limits charge and discharge rates and capacity retention.
A powder composition for battery negative electrodes comprising silicon-based particles dispersed in a matrix material with specific ranges of open and closed porosity, optimized to reduce battery swelling and maintain high first cycle coulombic efficiency, is developed. The powder has a total specific volume of open porosity between 0.005 cm³/g and 0.05 cm³/g and closed porosity between 0.01 cm³/g and 0.1 cm³/g, with a ratio of open to closed porosity between 0.01 and 0.99, ensuring efficient lithium ion diffusion and minimizing SEI formation.
The optimized powder composition effectively reduces battery swelling during cycling while maintaining high first cycle coulombic efficiency, enhancing the cycle life and capacity retention of lithium-ion batteries.
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Abstract
Description
[Technical Field]
[0001] The present invention relates to powders for use in battery negative electrodes and batteries containing such powders. [Background technology]
[0002] Lithium-ion (Li-ion) batteries are currently the most powerful batteries and have already become the standard for portable electronic devices. In addition, these batteries have already penetrated and are rapidly becoming popular in other industries, such as automotive and energy storage. The realizable advantage of such batteries is their high energy density combined with good power performance.
[0003] Li-ion batteries typically include several so-called Li-ion cells, which contain a positive electrode, also called a cathode, a negative electrode, also called an anode, and a separator, all immersed in an electrolyte. The Li-ion cells most frequently used in portable applications are developed using electrochemically active materials such as lithium cobalt oxide or lithium nickel manganese cobalt oxide in the cathode and natural or synthetic graphite in the anode.
[0004] It is known that the active material in the anode is one of the key limiting factors affecting battery performance, especially the energy density of the battery. Therefore, the use of silicon-containing electrochemically active materials in the negative electrode has been investigated for many years to improve the energy density.
[0005] Throughout this document, silicon is intended to mean the element Si in its zero-valent state. The term Si is used to refer to the element Si regardless of its oxidation state, whether zero-valent or oxidized.
[0006] A drawback of using silicon-based electrochemically active materials in anodes is their large volume expansion during charging, as much as 300% when lithium ions are fully incorporated into the anode's active material, for example, by alloying or intercalation (a process often referred to as lithiation). The large volume expansion of silicon-based materials during Li incorporation can induce stresses in the silicon-based particles, which can result in mechanical degradation of the silicon-based materials. Cyclic cycling during charging and discharging of Li-ion batteries can reduce battery life to unacceptable levels due to the repeated mechanical degradation of silicon-based electrochemically active materials.
[0007] Another adverse effect associated with silicon is that a thick SEI, i.e., a solid electrolyte interface, can form on the anode. The SEI is a complex reaction product of the electrolyte and lithium, and therefore reduces the availability of lithium for electrochemical reactions, resulting in poor cycling performance and loss of capacity per charge-discharge cycle. Furthermore, a thick SEI can increase the electrical resistance of the battery, thereby limiting the achievable charge and discharge rates.
[0008] In principle, SEI formation is a self-terminating process that stops as soon as a "passivation layer" forms on the surface of the silicon-based material. However, due to the volume expansion of silicon-based particles, both the silicon-based particles and the SEI can be damaged during discharge (lithiation) and charging (delithiation), thereby exposing new silicon surfaces and initiating new SEI formation.
[0009] To overcome the above drawbacks, active material powders are typically used in which silicon-based particles are mixed with at least one component to protect the silicon-based particles from electrolyte decomposition and accommodate volume changes, which may be a carbon-based material and preferably forms a matrix.
[0010] Despite the use of such active material powders, there is still room for improvement in the performance of batteries containing Si-based anode materials.
[0011] In the art, the performance of batteries containing silicon-based anode materials is generally quantified in terms of the so-called full-cell cycle life, which is defined as the number of times or cycles that a cell containing such a material can be charged and discharged until it reaches 80% of its initial discharge capacity. As such, most research into silicon-based anode materials has focused on improving cycle life.
[0012] An object of the present invention is to provide a stable anode material which, when used in the negative electrode of a battery, is advantageous in that it can reduce battery expansion during cycling while maintaining high first cycle coulombic efficiency. Summary of the Invention [Means for solving the problem]
[0013] This object is achieved by providing a powder according to claim 1, the use of which in the negative electrode of a battery makes it possible to reduce battery swelling during cycling while maintaining a high first cycle coulombic efficiency without compromising the specific capacity. By "high first cycle coulombic efficiency" we mean here a coulombic efficiency at the first cycle in a full cell of at least 82%.
[0014] The present invention relates to the following embodiments.
[0015] Embodiment 1 In a first aspect, the present invention provides a powder for use in a battery negative electrode, the powder comprising particles, the particles comprising a matrix material and silicon-based particles dispersed in the matrix material, the powder comprising cm 3 / g and has a total specific volume of open porosity measured by nitrogen adsorption / desorption measurements of the powder, and the powder is 3 / g and has a total specific volume of closed porosity measured from a true density measurement of the powder using helium pycnometry, - the total specific volume of its open porosity is at least 0.005 cm 3 / g, with a maximum of 0.05 cm 3 / g, - The total specific volume of its closed porosity is at least 0.01 cm 3 / g, and at most 0.1 cm 3 / g, the ratio of the total specific volume of its open porosity to the total specific volume of its closed porosity is at least equal to 0.01 and at most equal to 0.99, Concerning powder.
[0016] "Particles comprising a matrix material and silicon-based particles dispersed in the matrix material" means that the particles comprise silicon-based particles, and therefore the particles comprised in the powder are, on average, larger in size than the silicon-based particles. The particles comprised in the powder are typically micrometer-sized, and the silicon-based particles are typically nanometer-sized.
[0017] The silicon-based particles are largely, and preferably entirely, covered by the matrix material. Thus, in the powder according to embodiment 1, the silicon-based particles are preferably only in contact with each other and / or with the matrix material. The matrix material is preferably a continuous phase matrix.
[0018] The silicon-based particles may have any shape, for example, substantially spherical, but may also have irregular shapes, rods, plates, etc. In the silicon-based particles, the Si is mostly present as silicon metal, to which small amounts of other elements may be added to improve properties, or the silicon-based particles may contain some impurities such as oxygen or trace metals. Considering all elements other than oxygen, the average Si content in such silicon-based particles is preferably 80 wt% or more, more preferably 90 wt% or more, based on the total weight of the silicon-based particles.
[0019] Powder for use in a battery negative electrode means an electrochemically active powder comprising electrochemically active particles capable of storing and releasing lithium ions upon lithiation and delithiation, respectively, of the battery negative electrode. Such powders may equivalently be referred to as "active powders."
[0020] cm 3 The total specific volume of the open porosity of a powder, expressed in / g, is to be understood here as the sum of the specific volumes of all pores present in the particle relative to the mass of the powder, these pores being connected to the outer surface of the particle and therefore accessible, for example, to gases (for example, N, CO or helium) or liquids. They may be, for example, depressions, cracks, cavities, etc. on the surface formed by gases released during synthesis, which result in cracks in the structure or an uneven surface.
[0021] The total specific volume of open porosity of a powder is measured by nitrogen adsorption / desorption measurements. Similarly, it can also be measured by mercury porosimetry.
[0022] cm 3 The total specific volume of closed porosity of a powder, expressed in / g, is to be understood here as the sum of the specific volumes of all pores present in the particle relative to the mass of the powder, these pores not being connected to the outer surface of the particle and therefore not accessible, for example, to gases or liquids. They may be formed, for example, by internal stresses, strain generation and cracks in the structure, or by gases released during synthesis, gases remaining trapped in the pores.
[0023] The volume of closed porosity of a powder is measured based on the true density of the powder using helium pycnometry, using the following equation (1):
number
number
[0024] Equation (1) makes it possible to calculate the closed porosity of any powder, whatever its chemical composition. The densities of the different chemical species, silicon, SiO2, matrix material and graphite, may be measured separately, for example using helium pycnometry, or may be found in the literature.
[0025] An example is provided below to illustrate, in a non-limiting manner, the measurement of the total specific volume of closed porosity. In this illustrative example, the powder contains 44 wt. % Si, 49 wt. % carbon, and 7 wt. % oxygen. The 49 wt. % carbon corresponds to 44 wt. % soft carbon, which is the matrix material in this example, and 5 wt. % graphite. All oxygen bonds to silicon, forming silicon dioxide, SiO2. The fraction of silicon in the powder is 0.3786, the fraction of SiO2 is 0.1314, the fraction of matrix material (soft carbon) is 0.44, and the fraction of graphite is 0.05. The true density of the powder, measured by helium pycnometry, is 2.05 g / cm3. 3 The theoretical densities of silicon, SiO2, soft carbon, and graphite are 2.33 g / cm 3 , 2.65g / cm 3 , 1.97g / cm 3 and 2.26 g / cm 3 Applying formula (1), the value is 0.030 cm 3 The total specific volume of closed porosity in g is obtained.
[0026] Furthermore, the total specific volume of open porosity of the powder measured by nitrogen adsorption / desorption is 0.025 cm 3 / g, and the ratio of the total specific volume of its open porosity to the total specific volume of its closed porosity is equal to 0.826.
[0027] The powder must be at least 0.005 cm 3 / g, preferably at least 0.01 cm 3 / g, more preferably at least 0.015 cm 3 It is important to have a total specific volume of open porosity equal to 0.1 / g, because too low a specific volume of open porosity can limit the wetting of the particles by the electrolyte in the battery and thus limit the diffusion of lithium ions, which can reduce especially high charge / discharge currents.
[0028] In addition, the total specific volume of open porosity is at most 0.05 cm 3 / g, preferably at most 0.04 cm 3 / g, more preferably at most 0.03 cm 3 / g is important because too high a specific volume of open porosity will result in too much particle surface exposed to the electrolyte in the battery, thus forming a thicker solid electrolyte interfacial layer and reducing the coulombic efficiency in the early cycles.
[0029] The powder is at least 0.01 cm 3 / g, preferably at least 0.015 cm 3 / g, more preferably at least 0.020 cm 3 It is important to have a total specific volume of closed porosity equal to 0.05g / g, because if the total specific volume of closed porosity is too small, its effect on electrode swelling during cycling will be too limited. If present in a sufficient specific volume, the closed porosity present inside the particle will partially absorb the swelling due to lithiation of the silicon-based particle, thereby limiting electrode swelling.
[0030] The total specific volume of closed porosity is at most 0.1 cm3 / g, preferably at most 0.06 cm 3 / g, more preferably at most 0.04 cm 3 / g is also important because if the specific volume of closed porosity is too high, the particle structure will be too brittle, leading to the formation of large cracks upon lithiation / delithiation, ultimately resulting in particle fracture and exposing the silicon-based particles to the electrolyte, forming additional SEI, and therefore reducing capacity retention.
[0031] In addition, since the benefits of the presence of closed porosity are higher than the benefits of the presence of open porosity, it is important that the total specific volume of the closed porosity of the powder is greater than the total specific volume of the open porosity. Therefore, the ratio of the total specific volume of the open porosity of the powder to the total specific volume of its closed porosity should be less than 1, preferably ≧0.01 and ≦0.99, more preferably ≧0.2 and ≦0.9, and even more preferably ≧0.38 and ≦0.79.
[0032] Finally, it is particularly preferred that the powder according to the invention combines the required range of total specific volume of open porosity with the required range of total specific volume of closed porosity and the required range of total specific volume of open porosity relative to the total specific volume of closed porosity. Only when these three conditions are met can the technical effect of reduced battery swelling during cycling be achieved while maintaining a high first cycle coulombic efficiency be achieved.
[0033] Embodiment 2 In a second embodiment according to embodiment 1, the powder comprises: - the total specific volume of its open porosity is at least 0.01 cm 3 / g, with a maximum of 0.04 cm 3 / g, - the total specific volume of its closed porosity is at least 0.015 cm 3 / g, with a maximum of 0.06 cm 3 / g, the ratio of the total specific volume of its open porosity to the total specific volume of its closed porosity is at least equal to 0.2 and at most equal to 0.9;
[0034] Embodiment 3 In a third embodiment according to embodiment 1 or 2, the powder comprises: - the total specific volume of its open porosity is at least 0.015 cm 3 / g, with a maximum of 0.03 cm 3 / g, - The total specific volume of its closed porosity is at least 0.02 cm 3 / g, with a maximum of 0.04 cm 3 / g, the ratio of the total specific volume of its open porosity to the total specific volume of its closed porosity is at least equal to 0.38 and at most equal to 0.79;
[0035] Embodiment 4 In a fourth embodiment according to any one of the first to third embodiments, the silicon-based particles are comprised among particles characterized by a number-based particle size distribution having a d50 equal to or greater than 40 nm and equal to or less than 150 nm.
[0036] The number-based particle size distribution is based on a visual analysis (with or without the aid of an image analysis program) of the minimum number of silicon-based particles contained in the powder or composite powder. This minimum number of silicon-based particles is at least 1000 particles. Examples of measurements of the number-based fraction of particles are provided in the "Analytical Methods" section.
[0037] For clarity, for example, a d50 of 100 nm herein means that 50% by number of at least 1000 silicon-based particles have a size smaller than 100 nm and 50% by number of at least 1000 silicon-based particles have a size greater than 100 nm.
[0038] Silicon-based particles with a number-based particle size distribution having a d50 of less than 40 nm are very difficult to disperse efficiently in a matrix material, which can reduce the electronic conductivity of the powder.
[0039] Silicon-based particles having a number-based particle size distribution with a d50 greater than 150 nm are prone to breakage during their lithiation, causing a dramatic reduction in the cycle life of batteries containing such powders.
[0040] The d50 is considered to be unaffected by the process for making the powder or composite powder, meaning that the d50 value of the silicon-based powder used as a precursor in the process is the same as the d50 value of the silicon-based particles contained in the powder.
[0041] Embodiment 5 In a fifth embodiment according to any one of embodiments 1 to 4, the silicon-based particles contained in the particles have a chemical composition with at least 70 wt% Si, preferably at least 80 wt% Si. Preferably, the silicon-based particles do not contain elements other than Si and O to avoid the silicon-based particles having too low a specific capacity.
[0042] Embodiment 6 In a sixth embodiment according to any one of the first to fifth embodiments, the powder has a Si content A expressed in weight percent (wt%), where 10wt%≦A≦60wt%.
[0043] If the Si content is too low, the specific capacity is too limited and therefore the battery cannot achieve a high energy density, whereas if the Si content is too high, it becomes difficult to effectively disperse the silicon-based particles within the matrix material, resulting in excessive swelling of the electrode during lithiation / delithiation.
[0044] Embodiment 7 In a seventh embodiment according to any one of the embodiments 1 to 6, the powder has a Si content A and an oxygen content B, both expressed in weight percent (wt%), such that B≦0.3×A, preferably B≦0.2×A, more preferably B≦0.15×A, and especially preferably B≦0.1×A.
[0045] Powders with too high an oxygen content will suffer additional irreversible lithium consumption due to the formation of lithium oxide (LiO) during the initial lithiation of the powder, thereby reducing the initial coulombic efficiency of batteries containing such powders.
[0046] Embodiment 8 In an eighth embodiment according to any one of the first to seventh embodiments, the particles have a volumetric particle size distribution with D10, D50 and D90, wherein 1 μm≦D10≦10 μm, 8 μm≦D50≦25 μm, and 10 μm≦D90≦40 μm.
[0047] Embodiment 9 In a ninth embodiment according to any one of embodiments 1 to 8, the powder has a density of at most 10 m 2 / g, preferably at most 5m 2 / g BET surface area.
[0048] It is important that the powder have a low BET specific surface area to reduce the surface of the electrochemically active particles in contact with the electrolyte, in order to limit the formation of a lithium-consuming solid electrolyte interphase (SEI) and thus the irreversible loss of capacity of batteries containing the powder.
[0049] Embodiment 10 In a tenth embodiment according to any one of the first to ninth embodiments, the matrix material is carbon.
[0050] The carbon is preferably obtained from the pyrolysis of at least one of the following materials: polyvinyl alcohol (PVA), polyvinyl chloride (PVC), sucrose, coal tar pitch, petroleum pitch, lignin, and resin.
[0051] Embodiment 11 In an eleventh embodiment according to embodiment 10, the powder has a carbon content C expressed in weight percent (wt%), where 22wt%≦C≦88.5wt%.
[0052] If the carbon content in the powder is less than 22 wt%, the carbonaceous matrix material is not present in sufficient amounts to completely coat the silicon-based particles, thus resulting in increased electrolyte decomposition at the surface of the silicon-based particles and therefore increased SEI formation. If the carbon content in the powder is higher than 88.5 wt%, the specific capacity of the powder is too low.
[0053] Embodiment 12 In a twelfth embodiment according to any one of the first to eleventh embodiments, the present invention further relates to a battery comprising any of the powder variants defined above, preferably having a negative electrode, wherein the powder is present in the negative electrode.
[0054] Embodiment 13 In a thirteenth embodiment according to any one of the embodiments 1 to 11, the present invention finally relates to a method for preparing any of the powder variants defined above, comprising the following steps:
[0055] In step A, silicon-based particles are provided. In step B, a thermosetting polymer is dissolved in a suitable solvent to obtain a solution, and silicon-based particles are dispersed in this solution to obtain a dispersion. The thermosetting polymer acts as a sacrificial material, which is completely or almost completely decomposed during a subsequent heat treatment step, thereby creating porosity. Preferably, the solvent in step B is isobutanol, because it allows for a highly stable dispersion of silicon-based particles to be obtained. In step C, the solvent is removed from the dispersion to obtain a powder of silicon-based particles coated with a thermosetting polymer, and the powder is then cured to obtain a cured powder. In step D, the cured powder is milled to obtain a submicron cured powder. In step E, the submicron cured powder is mixed with a carbon precursor to obtain a mixture, and the mixture is then heat-treated, thereby pyrolyzing the carbon precursor. The carbon precursor is preferably at least one of the following materials: polyvinyl alcohol (PVA), polyvinyl chloride (PVC), sucrose, coal tar pitch, petroleum pitch, lignin, and resin. In step F, the powder obtained in step E is ground and subsequently sieved to obtain the final powder.
[0056] Embodiment 14 In a fourteenth embodiment according to the thirteenth embodiment, the thermosetting polymer is one or a combination of a melamine-based polymer, a phenol-based polymer, a urethane-based polymer, an ester-based polymer, an epoxy-based polymer, and derivatives thereof. Preferably, the thermosetting polymer is a phenol-formaldehyde resin.
[0057] Embodiment 15 In a fifteenth embodiment according to embodiment 13 or 14, the curing in step C is carried out at a temperature of at most 200° C., preferably at most 150° C., to prevent oxidation of the silicon-based particles. [Brief explanation of the drawings]
[0058] [Figure 1] Schematic diagram of the particles contained in the powder: particle (1), silicon-based particles (2), matrix material (3), open porosity (4), and closed porosity (5). [Figure 2] Schematic of the setup used to measure battery swelling: 1. Connection from pouch cell to battery tester 2. Measurement device 3. Stand 4. Displacement sensor 5. Pouch cell 6. Metal plate DETAILED DESCRIPTION OF THE INVENTION
[0059] In order to enable the practice of the invention, preferred embodiments will be described in detail in the drawings and the following detailed description. While the invention has been described with reference to these particular preferred embodiments, it will be understood that the invention is not limited to these preferred embodiments. To the contrary, however, the invention encompasses numerous alternatives, modifications, and equivalents, as will become apparent from a consideration of the following detailed description and the accompanying drawings.
[0060] Analytical methods used Measurement of total specific volume of open porosity The true density of the powders in the examples and comparative examples is measured using nitrogen adsorption / desorption analysis (Micromeritics Tristar 3020) by the following method: The powder is introduced into a sample tube and prepared (heating, vacuum or N2 gas flushing) to remove all foreign molecules from the powder surface and the sample tube.
[0061] It is then cooled to liquid N2 temperature, where N2 adsorption occurs on the powder particles. This adsorption occurs at a relative pressure (P / P) of 0.10 to 0.99. o ) is measured. The relative pressure is then reduced so that N2 desorption occurs on the powder particles. This is measured at a relative pressure (P / P) of 0.99 to 0.10. o ) is measured.
[0062] In this way, the BJH pore size distribution curve is obtained. Finally, the total specific volume of open porosity is calculated.
[0063] Alternatively, the total specific volume of open porosity can be measured using a mercury porosimeter (Micromeritics Autopore IV, Micromeritics, Georgia, USA). Measurements of the intrusion volume of mercury versus applied pressure are obtained, and the pressure is converted to pore size using the Washburn equation.
[0064] True density measurement The true density of the powders in the examples and comparative examples was measured using helium pycnometry analysis (Micromeritics AccPyc 1340) by the following method: An inert gas, in this case helium, was used as the displacement medium. The sample was placed in a sealed cup of known volume. The cup was then placed in the sample chamber. Helium was introduced into the sample chamber and then expanded into a second, empty chamber of known volume. The pressure observed after filling the sample cell and the pressure released into the expansion chamber were measured, and the corresponding volume was then calculated. The true density was measured by dividing the sample weight by the calculated volume. Since helium cannot access the closed porosity, it is included in the total specific volume of the powder. Therefore, the equation for measuring the specific volume of a powder containing silicon-based particles embedded in a matrix material is as follows:
number
number
[0065] Measurement of Si content The Si content of the powders of the examples and comparative examples is measured by X-ray fluorescence (XRF) using an energy dispersive spectrometer. The random experimental error of this method for Si is ±0.3 wt%.
[0066] Oxygen content measurement The oxygen content of the powders in the examples and comparative examples is measured using a Leco TC600 oxygen-nitrogen analyzer by the following method: A powder sample is placed in a closed tin capsule, which is itself placed in a nickel basket. The basket is placed in a graphite crucible and heated to over 2000°C under helium as a carrier gas. This melts the sample, and the oxygen reacts with the graphite from the crucible to form CO or CO gas. These gases are directed into an infrared measuring cell. The observed signal is recalculated to obtain the oxygen content.
[0067] Carbon content measurement The carbon content of the powders in the examples and comparative examples is measured using a Leco CS230 carbon-sulfur analyzer by the following method: The sample is melted in a ceramic crucible in a high-frequency furnace with a constant oxygen flow. The carbon in the sample reacts with the oxygen gas and leaves the crucible as CO or CO2. After finally converting the CO present to CO2, all the CO2 produced is finally detected by an infrared detector. The signal is finally converted into carbon content.
[0068] Measurement of specific surface area (BET) The specific surface area was measured using a Micromeritics Tristar 3000 by the Brunauer-Emmett-Teller (BET) method. First, 2 g of the powder to be analyzed was dried in an oven at 120 °C for 2 hours, followed by a N2 purge. The powder was then degassed under vacuum at 120 °C for 1 hour to remove adsorbed species, and then measured.
[0069] Electrochemical performance measurements The electrochemical performance of the powders in the examples and comparative examples is measured by the following method.
[0070] The powder to be evaluated is sieved using a 45 μm sieve and mixed with carbon black, carbon fiber, and sodium carboxymethyl cellulose binder (2.5 wt%) in water. The ratio used is 89 parts by weight of active material powder / 1 part by weight of carbon black (C65) / 2 parts by weight of carbon fiber (VGCF) and 8 parts by weight of carboxymethyl cellulose (CMC). These components are mixed in a Pulverisette 7 planetary ball mill at 250 rpm for 30 minutes.
[0071] Copper foil washed with ethanol is used as the current collector for the negative electrode. A 200 μm thick layer of the mixed components is coated onto the copper foil. The coating is dried at 70° C. in vacuum for 45 minutes. A 13.86 cm 3 film is removed from the dried coated copper foil. 2 A rectangular electrode is punched out and dried overnight under vacuum at 110°C to be used as the negative electrode of a pouch cell.
[0072] The positive electrode is prepared as follows: 3 / 5 Mn 1 / 5 Co 1 / 5 O2 (NMC 622) powder is mixed with carbon black (C65), carbon fiber (VGCF), and a binder solution of 8 wt% polyvinylidene fluoride (PVDF) in N-methyl-2-pyrrolidone (NMP). The ratio used is 92 parts by weight of commercial NMC 622 powder / 1 part by weight of carbon black / 3 parts by weight of carbon fiber / 4 parts by weight of PVDF. These components are mixed in a Pulverisette 7 planetary ball mill at 250 rpm for 30 minutes. Aluminum foil washed with ethanol is used as the positive current collector. A layer of the mixed components is coated onto the aluminum foil to a thickness such that the ratio of negative to positive capacity is 1.1. The coating is dried in a vacuum at 70°C for 45 minutes. An 11.02 cm2 film is removed from the dried coated aluminum foil. 2 A rectangular electrode is punched out and dried overnight at 110°C under vacuum to be used as the positive electrode of the pouch cell.
[0073] The electrolyte used was 1M LiPF6 dissolved in EC / DEC solvent (1 / 1 by volume), with 2 wt% VC and 10 wt% FEC additive.
[0074] The assembled pouch cells are then tested according to the following procedure: The first cycle corresponds to conditioning the battery, where "CC" stands for "constant current" and "CCCV" stands for "constant current constant voltage."
[0075] ● Cycle 1: ○ 4 hours of downtime (initial downtime) ○ Charge at C / 40 to 15% of theoretical cell capacity ○ 12-hour break ○ CC charging at C / 20V~4.2V ○ CC discharge at C / 20V~2.7V ● Cycle 2 and beyond: ○ CC charging from C / 2V to 4.2V, then CV charging up to C / 50 ○ CC discharge at C / 2V~2.7V
[0076] The coulombic efficiency (CE) of a pouch cell is the ratio of the discharge capacity to the charge capacity in a given cycle and is calculated for the initial cycles. The initial cycles are the most important in terms of coulombic efficiency, since the SEI formation reaction has a significant impact on the CE. For industrial applications, pouch cells must reach a first-cycle coulombic efficiency equal to at least 82%.
[0077] Furthermore, considering commercial applications, it is well recognized that anode materials with a specific capacity of about 1300 mAh / g are required to achieve a cycle life of at least 150 cycles in such pouch cells. These high-capacity powders can be further diluted with, for example, graphite to a capacity of 600 mAh / g to 700 mAh / g during negative electrode preparation to achieve a cycle life of more than 300 cycles.
[0078] Battery swelling determination Hereinafter, "battery," "cell," and "pouch cell" are all synonyms.
[0079] Battery or anode swelling, or volume change, refers to the change in thickness of the battery or anode during charge and discharge cycles. Because cathode swelling is very limited and the same cathode is used in all batteries disclosed in this current application, battery swelling is directly correlated to anode swelling. As a result, the battery reaches a state of maximum swelling (maximum battery thickness) at the end of charge, corresponding to maximum anode lithiation, and a state of minimum swelling (minimum battery thickness except in the initial state after assembly), corresponding to maximum anode delithiation, at the end of discharge.
[0080] The swelling of the batteries containing the powders of the Examples and Comparative Examples as the anode material is determined by the following method.
[0081] Pouch cells containing the various powders to be evaluated were assembled according to the method described above. All anodes contained powders or a mixture of powders and graphite with similar specific capacities, i.e., about 1300 mAh / g. All anodes had similar loadings and densities, i.e., about 5.5 mg / cm, respectively. 2 and 1.4 g / cm 3 In these pouch cells, only the nature of the anode powder changes.
[0082] The thickness of each pouch cell (5) is first measured before being introduced into the setup as described in Figure 2. The metal plate (6) ensures that a uniform and constant external pressure is applied to the pouch cell throughout the entire measurement; the applied pressure was 7 psi for all measurements. The displacement sensor (4) is placed in contact with the top metal plate, and the displacement value of the measuring device (2) is set to 0 μm. The accuracy of the measuring device (2) is 0.1 μm. The pouch cell is then connected to the battery tester using alligator clamps (1). The pouch cell is then cycled using the procedure described below. Here, "CC" stands for "constant current" and "CV" stands for "constant voltage."
[0083] ● 24-hour resting phase to obtain stable thickness values ● Cycle 1 (conditioning) CC charging at 0.025C until 15% of theoretical cell capacity is reached ○ 12-hour break CC charge at 0.05C up to 4.2V, then CV charge to 0.02C ○ 5 minute break ○ CC discharge at 0.05C to 2.7V Cycle 2 ○ 5 minute break CC charge at 0.1C up to 4.2V, then CV charge to 0.02C ○ 5 minute break ○ CC discharge at 0.1C to 2.7V ● Cycles 3 and 4 ○ 5 minute break CC charge at 0.2C up to 4.2V, then CV charge to 0.02C ○ 5 minute break ○ CC discharge at 0.2C to 2.7V Cycle 5 ○ 5 minute break CC charge at 0.1C up to 4.2V, then CV charge to 0.02C ○ 5 minute break ○ CC discharge at 0.1C to 2.7V
[0084] The recorded data is then extracted and processed to plot the evolution of pouch cell swelling as a function of time. The displacement (swelling) measured at the end of the fifth cycle is used to compare the performance of the powders contained in the anode. For example, if the thickness of the battery before cycling is 50 μm and the thickness at the end of the fifth cycle is 70 μm, the swelling of the battery will be 40%.
[0085] Measurement of number-based particle size distribution of silicon-based particles The number-based particle size distribution of the silicon-based particles contained in the powder according to the invention is determined by electron microscopy (SEM or TEM) of a cross-section of the powder in combination with image analysis, preferably aided by an image analysis program.
[0086] To perform analysis using an SEM instrument, sample preparation is performed as follows: 500 mg of the powder to be analyzed is embedded in 7 g of resin (Buehler EpoxiCure 2) consisting of a mixture of 4 parts epoxy resin (20-3430-128) and 1 part epoxy hardener (20-3432-032). The resulting 1-inch (25.4 mm) diameter sample is allowed to dry for at least 8 hours. It is then first mechanically polished using a Struers Tegramin-30 to a maximum thickness of 5 mm, and then further polished by ion beam polishing (Jeol SM-09010 Cross Section Polisher) at 6 kV for approximately 6 hours to obtain a polished surface. Finally, a carbon coating is applied to this polished surface by carbon sputtering for 12 seconds using a Cressington 208 carbon coater to obtain the sample, also known as a "cross section," to be analyzed by SEM.
[0087] As a non-limiting illustration of the measurement of the particle size distribution of silicon-based particles contained in a powder, an SEM-based procedure is provided below. 1. Obtain multiple SEM images of a cross section of a powder containing multiple cross sections of silicon-based particles. 2. Adjust the image contrast and brightness settings to easily visualize the different constituents of the particles, especially the cross-sections of the matrix material and silicon-based particles. Due to their different chemical compositions, they can be easily distinguished by the difference in brightness. 3. Using a suitable image analysis program, select at least 100 distinct cross-sections of the silicon-based particle from one or more of the acquired SEM images that do not overlap with another cross-section of the silicon-based particle. These distinct cross-sections may be selected from one or more cross-sections of the powder that includes the particle. 4. d, which corresponds to the linear distance between the two most distant points on the periphery of the cross-section of the silicon-based particle for at least 100 distinct cross-sections of the silicon-based particle. max Measure the value.
[0088] The d10, d50, and d90 values of the number-based particle size distribution of the silicon-based particles measured using the above-described method are then calculated. These number-based particle size distributions can be easily converted to weight-based or volume-based particle size distributions using well-known mathematical formulas.
[0089] Powder particle size measurement The volumetric particle size distribution of the powder is measured with a laser diffraction particle size analyzer, Malvern Mastersizer 2000. The following measurement conditions are selected: Compression range, active beam length 2.4 mm, measurement range: 300 RF, 0.01 μm to 900 μm. Sample preparation and measurements are carried out according to the manufacturer's instructions.
[0090] Experimental Preparation of Comparative Examples and Examples Comparative Example 1 (CE1) not according to the invention Silicon-based powders were obtained by applying a 60 kW radio frequency (RF) inductively coupled plasma (ICP) using argon as the plasma gas, into which a micron-sized silicon powder precursor was injected at a rate of about 50 g / h, to obtain a prevailing temperature (i.e., in the reaction zone) of above 2000 K. In this first process step, the precursor was completely vaporized. In the second process step, 18 Nm was used to reduce the temperature of the gas to below 1600 K. 3 An argon flow of 100 L / h is used as a quench gas immediately downstream of the reaction zone to nucleate metallic submicron silicon powder. Finally, a passivation step is carried out at a temperature of 100°C for 5 minutes by adding 100 L / h of a N2 / O2 mixture containing 1 mol% oxygen.
[0091] The specific surface area (BET) of the obtained silicon powder was measured and found to be 83m 2 / g. The oxygen content of the obtained silicon-based powder is measured to be 8.6 wt %. The volumetric particle size distribution of the silicon-based powder is measured to be d10=61 nm, d50=113 nm, and d90=199 nm.
[0092] A dry blend is then made from 26 g of the resulting silicon-based powder and 40 g of a petroleum-based pitch powder having a softening point of 180° C. The blend is fed into a twin-screw extruder operated at a temperature of 230° C. under a nitrogen flow at a feed rate of 500 g / h.
[0093] The resulting mixture of silicon-based powder in pitch is cooled to room temperature under N2, solidified, and then crushed and sieved through a 400 mesh sieve to produce an intermediate powder.
[0094] 20 g of the intermediate powder was then mixed with 7 g of graphite on a roller bench for 3 hours, and the resulting mixture was then passed through a mill to deagglomerate it. These conditions resulted in good mixing, but the graphite particles were not embedded in the pitch.
[0095] The resulting mixture of intermediate powder and graphite is further subjected to a thermal post-treatment as follows: the product is placed in a quartz crucible in a tube furnace and heated to 1000°C at a heating rate of 3°C / min, held at that temperature for 2 hours, and then cooled to room temperature, all under an argon atmosphere.
[0096] The calcined product is finally hand-ground in a mortar and sieved through a 325 mesh sieve to form the final powder CE1.
[0097] The total Si content in powder CE1 is determined by XRF to be 34.2 wt.%, with an experimental error of + / - 0.3 wt.%. This corresponds to a calculated value based on a weight loss of approximately 35 wt.% of the pitch upon heating and a small weight loss of the other components upon heating. The weight ratio of carbon resulting from pitch decomposition to Si is approximately 1. The oxygen content of powder CE1 is determined to be 3.3 wt.%. The specific surface area (BET) of powder CE1 is 4.0 m 2 / g. The volumetric particle size distribution of powder CE1 has a D10 equal to 4.1 μm, a D50 equal to 13.4 μm, and a D90 equal to 28.9 μm. Additional physicochemical properties of powder CE1 are also shown in Table 1.
[0098] A cross section of powder CE1 is prepared and analyzed by SEM, but no obvious porosity can be detected in the obtained microscopic image.
[0099] Comparative Example 2 (CE2) not according to the invention The same silicon-based powder as Powder CE1 is used to synthesize Powder CE2. To produce Powder CE2, 26 g of the above silicon-based powder is blended with a thermosetting polymer. The weight ratio of the thermosetting polymer to Si is 0.3. The polymer used is a phenol-formaldehyde resin. The blend is then placed in a ventilated oven, where the thermosetting polymer is cured at a temperature of 150°C. The resulting cured powder is then bead-milled to submicron particles. The ground silicon-polymer particles are further blended with 40 g of petroleum-based pitch powder with a softening point of 180°C. The blend is fed into a twin-screw extruder operating at a temperature of 230°C at a feed rate of 500 g / h under a nitrogen flow.
[0100] The resulting mixture of silicon-based powder in pitch is cooled to room temperature under N2, solidified, and then crushed and sieved through a 400 mesh sieve to produce an intermediate powder.
[0101] 20 g of the intermediate powder was then mixed with 4.5 g of graphite on a roller bench for 3 hours, after which the resulting mixture was passed through a mill to deagglomerate it. These conditions resulted in good mixing, but the graphite particles were not embedded in the pitch.
[0102] The resulting mixture of intermediate powder and graphite is then subjected to a thermal post-treatment: the product is placed in a quartz crucible in a tube furnace, heated to 1000°C at a heating rate of 3°C / min, held at that temperature for 2 hours, and then cooled to room temperature, all under an argon atmosphere. The thermosetting polymer present in the mixture decomposes without undergoing an actual melting process, leaving behind pores in the carbon matrix formed during the thermal treatment. The thermosetting polymer acts as a sacrificial material to create the porosity.
[0103] The calcined product is finally hand-ground in a mortar and sieved through a 325 mesh sieve to form the final powder CE2.
[0104] The total Si content of powder CE2 was determined by XRF to be 34.1 wt. %, which corresponds to a calculated value based on a weight loss of about 35 wt. % for the pitch and about 40 wt. % for the phenol-formaldehyde resin upon heating. The weight ratio of carbon from pitch decomposition to Si is about 1. Additional physicochemical properties of powder CE2 are also listed in Table 1.
[0105] Comparative Example 3 (CE3) not according to the invention Powder CE3 was produced using a method similar to that used to produce Powder CE2. The differences were that the weight ratio of thermosetting polymer to Si was increased to 0.9 (instead of 0.3) and the amount of graphite added to the intermediate powder was reduced to 1 g (instead of 4.5 g). The total Si content of this Powder CE3 was determined by XRF to be 34.3 wt%. Additional physicochemical properties of Powder CE3 are also listed in Table 1.
[0106] Example 1 (E1) according to the invention The same silicon-based powder as Powder CE1 was used to synthesize Powder E1. To produce Powder E1, a dispersion of 26 g of the silicon-based powder described above dissolved in isobutanol and a thermosetting polymer was prepared. The weight ratio of thermosetting polymer to silicon was 0.3. The polymer used was a phenol-formaldehyde resin. Once a good dispersion was obtained, a spray-drying process was performed to remove the solvent. The resulting dry powder consisted of silicon-based nanoparticles coated with a thermosetting polymer.
[0107] The dried powder is then placed in a ventilated oven where the thermosetting polymer is cured at a temperature of 150°C. The resulting cured powder is then bead milled to submicron particles. The ground silicon-polymer particles are further blended with 40g of petroleum-based pitch powder.
[0108] The remaining steps, namely melting of the pitch, preparation of the intermediate powder, mixing with graphite, heat treatment and final grinding, are carried out exactly as for powder CE1.
[0109] The total Si content of powder E1 is determined by XRF to be 34.1 wt. %. The weight ratio of carbon from pitch decomposition to Si is about 1. Additional physicochemical properties of powder E1 are also shown in Table 1.
[0110] Example 2 (E2) according to the invention Powder E2 is prepared using a method similar to that used to prepare powder E1, with the difference being that the weight ratio of thermosetting polymer to Si is increased to 0.5 (instead of 0.3) and the amount of graphite added to the intermediate powder is reduced to 3 g (instead of 4.5 g).
[0111] The total Si content of this powder E2 was determined by XRF to be 34.4 wt. %. The weight ratio of carbon from pitch decomposition to Si is approximately 1. Additional physicochemical properties of powder E2 are also listed in Table 1.
[0112] Example 3 (E3) according to the invention Powder E3 is prepared using a method similar to that used to prepare powder E1, with the difference being that the weight ratio of thermosetting polymer to Si is increased to 0.7 (instead of 0.3) and the amount of graphite added to the intermediate powder is reduced to 2 g (instead of 4.5 g).
[0113] The total Si content of this powder E2 is determined by XRF to be 34.3 wt. %. The weight ratio of carbon from pitch decomposition to Si is about 1. Additional physicochemical properties of powder E3 are also shown in Table 1.
[0114] Example 4 (E4) according to the invention Powder E4 is prepared using a method similar to that used to prepare powder E1, with the difference being that the weight ratio of thermosetting polymer to Si is increased to 0.9 (instead of 0.3) and the amount of graphite added to the intermediate powder is reduced to 1 g (instead of 4.5 g).
[0115] The total Si content of this powder E2 is determined by XRF to be 34.3 wt. %. The weight ratio of carbon from pitch decomposition to Si is about 1. Additional physicochemical properties of powder E3 are also shown in Table 1. [Table 1] [Table 2]
[0116] The particle size distribution, oxygen content and BET values of powders CE2, CE3, E1, E2, E3 and E4 are comparable to those of powder CE1.
[0117] All powders are further evaluated in full cells to measure both the first cycle coulombic efficiency and cell expansion, applying the procedures described above. All powders tested have a specific capacity of 1300 mAh / g ± 20 mAh / g. The results are reported in Table 3. [Table 3]
[0118] With regard to the first cycle coulombic efficiency, the cell containing the powder with the smallest total specific volume of open porosity (i.e., CE1) shows the best performance. Nevertheless, the cells containing powders E1 to E4 according to the invention also perform well in that respect, since they all have a first cycle coulombic efficiency at least equal to 82%.
[0119] With regard to cell swelling at the end of charge in cycle 5, the best results are obtained for powders E1 to E4 according to the invention. The swelling is significantly reduced compared to that obtained with powders not according to the invention. For example, the fact that powder E1 results in much lower cell swelling than powder CE2, even though both are produced using the same amount of thermosetting polymer, is likely due to the way in which the thermosetting polymer is mixed with the silicon-based powder, i.e., as a dispersion for powder E1 versus a simple blend for powder CE2. This has two effects:
[0120] First, as already mentioned, when a thermosetting polymer is mixed as a dispersion, the resulting dry powder consists of silicon-based particles coated with the thermosetting polymer. Therefore, pores are formed around the silicon-based particles during heat treatment, allowing the swelling of the silicon particles to be absorbed more efficiently. However, when a thermosetting polymer is simply added, pores are formed randomly within the particles, reducing the efficiency of absorption of swelling.
[0121] Second, when the thermosetting polymer is mixed as a dispersion, pores are formed around the silicon particles embedded in the matrix material, resulting in mainly closed porosity, whereas when the thermosetting polymer is simply blended and pores are formed randomly in the particles, it also results in the formation of more open porosity and less closed porosity, thus resulting in less efficient absorption of swelling.
[0122] Finally, it is surprising to observe that swelling does not decrease linearly with increasing total specific volume of closed porosity. The reason for this may be that above a certain volume of closed porosity, structural instability of the particles becomes the dominant factor due to the formation of cracks within the particles, as already mentioned above.
[0123] Overall, the best compromise in terms of battery performance is obtained for powders E1 and E2.
Claims
1. 1. A powder for use in a battery negative electrode, the powder comprising particles, the particles comprising a matrix material and silicon-based particles dispersed in the matrix material, the powder comprising: cm 3 / g and having a total specific volume of open porosity measured by nitrogen adsorption / desorption measurements, and said powder having a specific volume of cm 3 / g and has a total specific volume of closed porosity measured from true density measurements using helium pycnometry; The powder is - the total specific volume of its open porosity is at least 0.005 cm 3 / g, and at most 0.05 cm 3 / g, - the total specific volume of its closed porosity is at least 0.01 cm 3 / g, and at most 0.1 cm 3 / g, the ratio of the total specific volume of its open porosity to the total specific volume of its closed porosity is at least equal to 0.01 and at most equal to 0.99; A powder characterized by:
2. The total specific volume of its open porosity is at least 0.01 cm 3 / g, and at most 0.04 cm 3 / g, The total specific volume of the closed porosity is at least 0.015 cm 3 / g, and at most 0.06 cm 3 / g, 2. Powder according to claim 1, wherein the ratio of the total specific volume of its open porosity to the total specific volume of its closed porosity is at least equal to 0.2 and at most equal to 0.
9.
3. The total specific volume of its open porosity is at least 0.015 cm 3 / g, and at most 0.03 cm 3 / g, The total specific volume of the closed porosity is at least 0.02 cm 3 / g, and at most 0.04 cm 3 / g, 2. The powder according to claim 1, wherein the ratio of the total specific volume of its open porosity to the total specific volume of its closed porosity is at least equal to 0.38 and at most equal to 0.
79.
4. 10. The powder of claim 1, wherein the silicon-based particles are characterized by a number-based particle size distribution having a d50, the d50 being equal to or greater than 40 nm and equal to or less than 150 nm.
5. 10. The powder of claim 1, wherein the silicon-based particles have a chemical composition having at least 70% by weight Si.
6. 2. The powder of claim 1 having a silicon content A expressed in weight percent (wt.%), where 10 wt.%≦A≦60 wt.%.
7. 7. The powder of claim 6, having a Si content A and an oxygen content B, both expressed in weight percent (wt%), and wherein B≦0.3×A.
8. 2. The powder of claim 1, wherein the particles of the powder have a volumetric particle size distribution having D10, D50, and D90, wherein 1 μm≦D10≦10 μm, 8 μm≦D50≦25 μm, and 10 μm≦D90≦40 μm.
9. Maximum 10m 2 10. The powder of claim 1 having a BET surface area of 0.1g / g.
10. 2. The powder of claim 1, wherein the matrix material is carbon.
11. 11. The powder according to claim 10, having a carbon content C expressed in weight percent (wt%), with 22 wt%≦C≦88.5 wt%.
12. A battery comprising the powder according to any one of claims 1 to 11.
13. A method for preparing the powder according to any one of claims 1 to 11, comprising the steps of: Step A: Providing silicon-based particles; Step B: dissolving a thermosetting polymer in a suitable solvent to obtain a solution and dispersing the silicon-based particles in the solution to obtain a dispersion; - step C: removing the solvent from the dispersion to obtain a powder of silicon-based particles coated with a thermosetting polymer and curing the powder to obtain a cured powder; - step D: grinding the hardened powder to obtain a submicron hardened powder; - step E: mixing said submicron hardening powder with a carbon precursor to obtain a mixture and heat treating said mixture to effect pyrolysis of said carbon precursor; - Step F: grinding the powder obtained in step E and subsequently sieving it to obtain the final powder.
14. 14. The method of claim 13, wherein the thermosetting polymer is one or a combination of a melamine-based polymer, a phenolic-based polymer, a urethane-based polymer, an ester-based polymer, an epoxy-based polymer, and derivatives thereof.
15. 14. The method of claim 13, wherein the curing in step C is carried out at a temperature of at most 200°C.
Citation Information
Patent Citations
Core-shell composite particles for lithium-ion batteries
JP2020505753A