Negative electrode material and battery
By adding metal catalyst to the silicon oxygen negative electrode material, the degree of prelithium of particles of different particle sizes is solved, and the problem of difficulty in improving the rate performance and storage performance at the same time in the prior art is solved, and the comprehensive performance improvement of the negative electrode material is achieved.
Patent Information
- Application Number
- PCT/CN2024/100637
- Authority / Receiving Office
- WO · WO
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2023-11-30
- Filing Date
- 2024-06-21
- Publication Date
- 2025-06-05
AI Technical Summary
The prior art is difficult to simultaneously improve the rate performance and storage performance of silicon oxygen negative electrode materials. Lithium doping will change the material structure, resulting in deterioration of rate performance and storage performance.
By adding metal catalyst to the silicon oxygen material, the prelithium degree of particles with different particle sizes is controlled, ensuring that the prelithium degree of particles with smaller particle sizes is low, and the prelithium degree of particles with larger particle sizes is high, thereby optimizing the structure and performance of the negative electrode material.
The storage performance, rate performance and cycling performance of the negative electrode material are improved, and the storage performance deterioration caused by the increase in specific surface area is avoided by controlling the degree of prelithium.
Smart Images

Figure CN2024100637_05062025_PF_FP_ABST
Abstract
Description
Anode materials and batteries
[0001] This application claims priority to the Chinese patent application filed with the State Intellectual Property Office of China on November 30, 2023, with application number 202311636274.5 and invention name “Negative electrode material and preparation method thereof, lithium-ion battery”, the entire contents of which are incorporated by reference into this application. Technical Field
[0002] The present application relates to the technical field of negative electrode materials, and more specifically, to negative electrode materials and batteries. Background Art
[0003] As the application of lithium-ion batteries continues to expand and deepen, the requirements for lithium-ion battery performance are also increasing. In particular, in terms of battery energy density, traditional graphite anode materials are no longer sufficient to meet the growing market demand. As a high-capacity anode material, silicon oxide anode materials have attracted much attention in recent years. The specific capacity of silicon oxide anode materials exceeds 2000mAh / g. However, compared with graphite materials, their lower initial coulombic efficiency, poorer conductivity, and poorer cycle and rate performance limit their practical application.
[0004] In order to improve the performance of silicon-oxygen negative electrode materials, existing technical research has shown that lithium doping can significantly improve the first coulombic efficiency of silicon-oxygen negative electrode materials. Silicon-oxygen materials and lithium-containing compounds are usually mixed and heat-treated for lithium doping. However, lithium doping will change the internal structure of the original silicon-oxygen negative electrode material. As the amount of lithium doping increases, the lithium ion transmission capacity of the silicon-oxygen negative electrode material is improved, so that the silicon-oxygen negative electrode material has better rate performance. However, the addition of too much lithium into the silicon-oxygen negative electrode material will cause the specific surface area of the silicon-oxygen negative electrode material to increase, thereby causing the storage performance of the silicon-oxygen negative electrode material to deteriorate when used in batteries. Therefore, traditional lithium doping of silicon-oxygen negative electrode materials cannot take into account the improvement of rate performance and storage performance.
[0005] Therefore, how to simultaneously improve the rate performance and storage performance of silicon-oxygen negative electrode materials is an urgent problem that needs to be solved.
[0006] Application Contents
[0007] The present application provides a negative electrode material and a battery, which can improve the rate performance of the negative electrode material while improving the storage performance and cycle performance.
[0008] In a first aspect, an embodiment of the present application provides a negative electrode material, including a silicon-based material, wherein the silicon-based material contains oxygen and lithium, and the negative electrode material is tested by a laser particle size analyzer to obtain a particle size D10 of 10% of the cumulative volume distribution and a particle size D90 of 90% of the cumulative volume distribution;
[0009] The ratio of the mass proportion of lithium elements to the mass proportion of oxygen elements in particles with a particle size less than or equal to D10 in the negative electrode material is recorded as A1, and the ratio of the mass proportion of lithium elements to the mass proportion of oxygen elements in particles with a particle size greater than or equal to D90 in the negative electrode material is recorded as A2, 0.6≤A1 / A2<1.
[0010] In some embodiments, the ratio of the mass proportion of the lithium element in the negative electrode material to the mass proportion of the oxygen element in the negative electrode material is recorded as A, and A is 0.1 to 0.7.
[0011] In some embodiments, the ratio of the mass fraction of lithium element to the mass fraction of oxygen element in particles with a particle size less than or equal to D10 in the negative electrode material is recorded as A1, and A1 is 0.1 to 0.65.
[0012] In some embodiments, the ratio of the mass fraction of lithium element to the mass fraction of oxygen element in particles with a particle size greater than or equal to D90 in the negative electrode material is recorded as A2, and A2 is 0.15 to 0.7.
[0013] In some embodiments, the silicon-based material includes at least one of a silicon-oxygen material and silicon, and the silicon-oxygen material includes at least one of Li2SiO3, Li2Si2O5, and Li4SiO4.
[0014] In some embodiments, the negative electrode material has a volume cumulative distribution of 10% particle size D10, 0.1 μm≤D10≤15 μm.
[0015] In some embodiments, the negative electrode material has a volume cumulative distribution of 90% particle size D90, and 0.5 μm≤D90≤30 μm.
[0016] In some embodiments, the negative electrode material has a volume cumulative distribution of 50% particle size D50, 0.3 μm ≤ D50 ≤ 25 μm.
[0017] In some embodiments, the negative electrode material further includes a coating layer distributed on at least a portion of the surface of the silicon-based material.
[0018] In some embodiments, the coating layer includes a carbon layer.
[0019] In some embodiments, the thickness of the coating layer for the negative electrode material with a particle size smaller than D10 is 15 nm to 1000 nm.
[0020] In some embodiments, the coating layer thickness for the negative electrode material having a particle size greater than D90 is 10 nm to 900 nm.
[0021] In some embodiments, the lithium content in the negative electrode material is 2 wt% to 20 wt%.
[0022] In some embodiments, the specific surface area of the negative electrode material is 0.1 m 2 / g~50m 2 / g.
[0023] In some embodiments, the oxygen content in the negative electrode material is 15 wt % to 45 wt %.
[0024] In some embodiments, the negative electrode material contains a metal element, and the metal element includes at least one of iron, cobalt, nickel, and copper.
[0025] In some embodiments, the negative electrode material contains a metal element, and the content of the metal element in the negative electrode material is 1 ppm to 5000 ppm.
[0026] In a second aspect, a battery comprises the negative electrode material described in the first aspect.
[0027] The technical solution of this application has at least the following beneficial effects:
[0028] In this application, the negative electrode material satisfies 0.6≤A1 / A2<1, indicating that the ratio A1 of the mass proportion of lithium element to the mass proportion of oxygen element in the particles with smaller particle size (particle size less than or equal to D10) in the negative electrode material is less than the ratio A2 of the mass proportion of lithium element to the mass proportion of oxygen element in the particles with larger particle size (particle size greater than or equal to D90) in the negative electrode material. The ratio of the mass proportion of lithium element to the mass proportion of oxygen element reflects the pre-lithiation degree of the negative electrode material particles. The pre-lithiation degree of the negative electrode material particles with smaller particle size is low, which can reduce the specific surface area of the negative electrode material, thereby improving the storage performance of the negative electrode material. The pre-lithiation degree of the negative electrode material particles with larger particle size is higher, which is conducive to improving the lithium ion conductivity inside the negative electrode material and improving the rate performance of the material. In addition, the pre-lithiation of the negative electrode material particles with larger particle size is more sufficient, so that the volume expansion of the negative electrode material during the charge and discharge process is smaller, which is conducive to improving the cycle performance of the negative electrode material. However, if the pre-lithiation degree of the negative electrode material particles with smaller particle size is too low, the lithium ion transmission capacity of the negative electrode material particles will be poor. If the pre-lithiation degree of the negative electrode material particles with larger particle size is too high, the specific surface area of the negative electrode material particles will become too large, which is not conducive to the improvement of the storage performance and rate performance of the negative electrode material. Therefore, in the same batch of negative electrode materials in the present application, particles of different particle sizes have different pre-lithiation degrees, and the ratio of the mass proportion of lithium element to the mass proportion of oxygen element A1 of the particles with smaller particle size and the ratio of the mass proportion of lithium element to the mass proportion of oxygen element A2 of the particles with larger particle size are controlled between 0.6 and 1 (excluding 1), so that the negative electrode material can improve the storage performance while improving the rate performance and cycle performance. BRIEF DESCRIPTION OF THE DRAWINGS
[0029] The present application is further described below with reference to the accompanying drawings and examples.
[0030] FIG1 is a flow chart of a method for preparing a negative electrode material provided in an embodiment of the present application. DETAILED DESCRIPTION
[0031] In order to better understand the technical solution of the present application, the embodiments of the present application are described in detail below with reference to the accompanying drawings.
[0032] It should be clear that the embodiments described are only part of the embodiments of this application, not all of the embodiments. Based on the embodiments in this application, all other embodiments obtained by ordinary technicians in this field without making creative work are within the scope of protection of this application.
[0033] The terms used in the embodiments of the present application are only for the purpose of describing specific embodiments and are not intended to limit the present application. The singular forms "a", "an", "the" and "the" used in the embodiments of the present application and the appended claims are also intended to include plural forms unless the context clearly indicates otherwise.
[0034] It should be understood that the term "and / or" as used herein is merely a description of the relationship between associated objects, indicating that three possible relationships exist. For example, "A and / or B" can represent: A exists alone, A and B exist simultaneously, or B exists alone. Furthermore, the character " / " in this document generally indicates that the associated objects are in an "or" relationship.
[0035] The present application provides a negative electrode material, including a silicon-based material, wherein the silicon-based material contains oxygen and lithium elements, and the negative electrode material is tested by a laser particle size analyzer to obtain a particle size D10 of 10% of the cumulative volume distribution and a particle size D90 of 90% of the cumulative volume distribution;
[0036] The ratio of the mass proportion of lithium element to the mass proportion of oxygen element in particles with a particle size less than or equal to D10 in the negative electrode material is recorded as A1, and the ratio of the mass proportion of lithium element to the mass proportion of oxygen element in particles with a particle size greater than or equal to D90 in the negative electrode material is recorded as A2, 0.6≤A1 / A2<1.
[0037] In the above scheme, the negative electrode material in this application satisfies 0.6≤A1 / A2<1, indicating that the ratio A1 of the mass proportion of lithium element to the mass proportion of oxygen element in the particles with smaller particle size (particle size less than or equal to D10) in the negative electrode material is less than the ratio A2 of the mass proportion of lithium element to the mass proportion of oxygen element in the particles with larger particle size (particle size greater than or equal to D90) in the negative electrode material. The ratio of the mass proportion of lithium element to the mass proportion of oxygen element reflects the pre-lithiation degree of the negative electrode material particles. The pre-lithiation degree of the negative electrode material particles with smaller particle size is low, which can reduce the specific surface area of the negative electrode material, thereby improving the storage performance of the negative electrode material. The pre-lithiation degree of the negative electrode material particles with larger particle size is higher, which is conducive to improving the lithium ion conductivity inside the negative electrode material and improving the rate performance of the material. In addition, the pre-lithiation of the negative electrode material particles with larger particle size is more sufficient, so that the volume expansion of the negative electrode material during the charge and discharge process is smaller, which is conducive to improving the cycle performance of the negative electrode material. However, if the pre-lithiation degree of the negative electrode material particles with smaller particle size is too low, the lithium ion transmission capacity of the negative electrode material particles will be poor. If the pre-lithiation degree of the negative electrode material particles with larger particle size is too high, the specific surface area of the negative electrode material particles will become too large, which is not conducive to the improvement of the storage performance and rate performance of the negative electrode material. Therefore, in the same batch of negative electrode materials in the present application, particles of different particle sizes have different pre-lithiation degrees, and the ratio of the mass proportion of lithium element to the mass proportion of oxygen element A1 of the particles with smaller particle size and the ratio of the mass proportion of lithium element to the mass proportion of oxygen element A2 of the particles with larger particle size are controlled between 0.6 and 1 (excluding 1), so that the negative electrode material can improve the storage performance while improving the rate performance and cycle performance.
[0038] In the present application, the particle size of the negative electrode material is measured by a laser particle size analyzer, and it has a symmetrical distribution similar to a normal distribution. In the above-mentioned normal distribution, the particle size at which the cumulative volume distribution of the negative electrode material particles is 10% is recorded as D10, the particle size at which the cumulative volume distribution of the negative electrode material particles is 90% is recorded as D90, and the particle size at which the cumulative volume distribution of the negative electrode material particles is 50% is recorded as D50, also known as the median particle size.
[0039] In some embodiments, the ratio of the mass proportion of lithium element in the negative electrode material to the mass proportion of oxygen element in the negative electrode material is recorded as A, and A is 0.1 to 0.7, and can specifically be 0.1, 0.2, 0.3, 0.4, 0.5, 0.6 and 0.7, etc. Of course, it can also be other values within the above range, which is not limited here.
[0040] In some embodiments, A1 is 0.1 to 0.65, specifically 0.1, 0.2, 0.3, 0.4, 0.5, or 0.65, and may also be other values within the above range, which is not limited herein. Within the above-defined range, it indicates that particles in the negative electrode material with a particle size smaller than D10 have an appropriate degree of pre-lithiation, which can reduce the specific surface area of the negative electrode material while ensuring that the negative electrode material has an appropriate lithium content, thereby improving the storage performance and initial efficiency of the negative electrode material.
[0041] In some embodiments, A2 is 0.15 to 0.7, specifically 0.15, 0.2, 0.3, 0.4, 0.5, 0.6, or 0.7, and may be other values within the above range, which is not limited herein. Within the above-defined range, it indicates that particles with a particle size greater than D90 in the negative electrode material have an appropriate pre-lithiation degree, which can not only improve the lithium ion conduction efficiency of the negative electrode material, but also enable the negative electrode material to have an appropriate specific surface area, thereby improving the rate performance, cycle performance, and initial efficiency of the negative electrode material.
[0042] In the present application, the particle sizes D10 and D90 of the negative electrode material are measured by a laser particle size analyzer, and the negative electrode material with a particle size less than or equal to D10 and the negative electrode material with a particle size greater than or equal to D90 are screened by a grading device. The Li content of the negative electrode material with a particle size less than or equal to D10 and the negative electrode material with a particle size greater than or equal to D90 is determined by an ICP spectrometer (Agilent 5800VDV ICP-OES), and the O element content of the negative electrode material with a particle size less than or equal to D10 and the negative electrode material with a particle size greater than or equal to D90 is determined by an ONH elemental analyzer, and then the A1 and A2 values are calculated.
[0043] In some embodiments, the silicon-based material includes at least one of a silicon-oxygen material and silicon.
[0044] In some embodiments, the lithium element in the negative electrode material is at least partially present in the form of a lithium-containing silicon-oxygen material, and the lithium-containing silicon-oxygen material includes but is not limited to at least one of Li2SiO3, Li2Si2O5 and Li4SiO4.
[0045] In some embodiments, 0.1 μm≤D10≤15 μm, and D10 can be, for example, 0.1 μm, 0.5 μm, 1 μm, 3 μm, 5 μm, 10 μm, 13 μm, or 15 μm, etc., and can certainly be other values within the above range, which is not limited here.
[0046] In some embodiments, 0.5 μm≤D90≤30 μm, and D90 can be, for example, 0.5 μm, 1 μm, 5 μm, 10 μm, 20 μm, 25 μm, or 30 μm, etc. Of course, it can also be other values within the above range, which is not limited here.
[0047] In some embodiments, 0.3 μm≤D50≤25 μm, specifically 0.3 μm, 1 μm, 5 μm, 10 μm, 15 μm, 20 μm, 25 μm, etc. Of course, it can also be other values within the above range, which is not limited here.
[0048] In some embodiments, silicon includes silicon microcrystals, and the grain size of the silicon microcrystals is less than or equal to 20 nm, for example, it can be 2 nm, 5 nm, 8 nm, 10 nm, 13 nm, 15 nm or 20 nm, etc. Of course, it can also be other values within the above range, which is not limited here.
[0049] In some embodiments, the negative electrode material also includes a coating layer distributed on at least a portion of the surface of the silicon-based material, and the coating layer includes a carbon layer. On the one hand, the presence of the coating layer can reduce the side reactions caused by the electrolyte entering the interior of the negative electrode material, resulting in a decrease in the initial efficiency and capacity of the negative electrode material. On the other hand, the coating layer can alleviate the volume expansion of silicon to a certain extent and reduce the swelling of the negative electrode plate during charging and discharging.
[0050] In some embodiments, the coating layer thickness of the negative electrode material with a particle size less than or equal to D10 is 15nm to 1000nm, specifically 15nm, 50nm, 100nm, 300nm, 500nm, 800nm and 1000nm, etc., and of course it can also be other values within the above range, which is not limited here.
[0051] In some embodiments, the coating layer thickness of the negative electrode material with a particle size greater than or equal to D90 is 10nm to 900nm, specifically 10nm, 50nm, 100nm, 300nm, 500nm, 700nm and 900nm, etc., and of course it can also be other values within the above range, which is not limited here.
[0052] In some embodiments, the lithium content in the negative electrode material is 2wt% to 20wt%, specifically 2wt%, 2wt%, 4wt%, 5wt%, 10wt%, 15wt% and 20wt%, etc. Of course, it can also be other values within the above range, which is not limited here.
[0053] In some embodiments, the specific surface area of the negative electrode material is 0.1 m 2 / g~50m 2 / g, specifically 0.1m 2 / g, 0.5m 2 / g、10m 2 / g, 20m 2 / g、30m 2 / g, 40m 2 / g and 50m 2 / g, etc., and of course, it can also be other values within the above range, which is not limited here.
[0054] In some embodiments, the oxygen content in the negative electrode material is 15wt% to 45wt%, specifically 15wt%, 20wt%, 25wt%, 30wt%, 35wt%, 40wt% and 45wt%, etc. Of course, it can also be other values within the above range, which is not limited here.
[0055] In some embodiments, the negative electrode material contains a metal element, and the metal element includes at least one of iron, cobalt, nickel, and copper.
[0056] In some embodiments, the mass content of the metal element in the negative electrode material is 1 ppm to 5000 ppm, specifically 1 ppm, 10 ppm, 100 ppm, 500 ppm, 1000 ppm, 2000 ppm, 3000 ppm, 4000 ppm, and 5000 ppm, etc., and of course other values within the above range are also possible, and are not limited here. Within the above-defined range, the problem of capacity decay caused by excessive metal element content in the negative electrode material can be reduced. The metal element content can be obtained by testing methods such as ion chromatography, composition analysis, or energy dispersive spectroscopy (EDX analysis).
[0057] In some embodiments, the metal element is present in the core (silicon-based material) and / or the cladding layer.
[0058] The present invention provides a method for preparing a negative electrode material, as shown in FIG1 , comprising the following steps:
[0059] Step S100 , selecting a silicon oxide raw material with a suitable particle size. Specifically, the silicon oxide raw material has a D10 of 0.1 μm ≤ D10 ≤ 15 μm, a D90 of 0.5 μm ≤ D90 ≤ 30 μm, and a D50 of 0.3 μm ≤ D50 ≤ 25 μm.
[0060] Step S200, mixing the silicon oxide raw material and a solution containing a metal catalyst and a surfactant, performing solid-liquid separation to obtain a precursor, wherein the mass ratio of the metal catalyst to the silicon oxide raw material is (0.00001-0.05):1;
[0061] Step S300, mixing the precursor and the carbon source for carbonization treatment;
[0062] Step S400 , mixing the carbonized product with a lithium source and performing heat treatment to obtain a negative electrode material.
[0063] In the above scheme, the present application obtains a precursor by mixing a silicon oxide raw material with a solution containing a metal catalyst so that an appropriate amount of metal catalyst is adsorbed on the surface of the silicon oxide raw material. The silicon oxide raw material has a larger specific surface area and can adsorb a relatively large amount of metal catalyst, while the silicon oxide raw material has a smaller specific surface area and can adsorb a relatively small amount of metal catalyst. Silicon oxide raw material particles of different particle sizes adsorb different amounts of metal catalyst. In the subsequent reaction with a carbon source, the amount of carbon coating and the thickness of the carbon coating layer are different. In the subsequent reaction with a lithium source, the degree of pre-lithiation will also be different. The precursor is mixed with a carbon source and carbonized to achieve carbon coating. During the carbon coating process, the metal elements on the surface of the silicon oxide raw material can induce carbon deposition, providing cracking and bonding reaction sites for the carbon source molecules, which is beneficial for carbon coating on the surface of the metal catalyst and improving the carbon coating efficiency. Therefore, the carbon coating amount of the small-particle precursor with a higher metal element content is higher and the coating layer is thicker, while the carbon coating amount of the large-particle precursor with a lower metal element content is lower and the coating layer is thinner, which is beneficial for improving the storage performance and rate performance of the negative electrode material. In the process of mixing the carbonized product with a lithium source for heat treatment, for the precursor with a smaller particle size, the pre-lithiation degree of the material during the heat treatment is lower, which can reduce the surface area of the negative electrode material, thereby improving the storage performance of the negative electrode material. For the precursor with a larger particle size, the pre-lithiation degree of the material during the heat treatment is higher, which is beneficial for improving the lithium ion conductivity of the negative electrode material, thereby improving the rate performance of the negative electrode material; and the negative electrode material particles with larger particle size are more fully embedded with lithium, so that the volume change of the negative electrode material during the charge and discharge process is smaller, which is beneficial for improving the cycle performance of the negative electrode material. The preparation method of the present application has a simple preparation process. By pre-mixing the silicon oxide raw material with a solution containing a metal catalyst, the mass ratio of the metal catalyst to the silicon oxide raw material is (0.00001-0.05):1. This can ensure that the metal catalysts adsorbed by silicon oxide raw materials of different particle sizes in the negative electrode material products prepared in the same batch are different, and can also reduce the situation where excessive metal catalyst in the precursor affects the subsequent lithium embedding, so that the prepared negative electrode material has both excellent storage performance and good rate performance.
[0064] The preparation method of the present application is described in detail below in conjunction with the above embodiments. As shown in FIG1 , it is a flow chart of the preparation of the negative electrode material provided in the embodiments of the present application:
[0065] Step S100 , selecting a silicon oxide raw material with a suitable particle size. Specifically, the silicon oxide raw material has a D10 of 0.1 μm≤D10≤15 μm, a D90 of 0.5 μm≤D90≤30 μm, and a D50 of 0.3 μm≤D50≤25 μm.
[0066] In some embodiments, the silicon oxide raw material comprises silicon oxide SiO y, wherein 0<y≤2, silicon oxide is a silicon-oxygen compound containing oxygen atoms and silicon atoms, and the molar ratio of oxygen atoms to silicon atoms is 0 to 2 and does not include 0. It can be Si, SiO 0.2 、SiO 0.5 、SiO 0.8 、SiO、SiO 1.2 、SiO 1.5 、SiO 1.8 Or SiO2, etc., a compound of two or more substances, or a substance with the chemical formula SiO y Of course, it can also be other values within the above range, and this application does not limit it here.
[0067] In some embodiments, D10 of the silicon oxide raw material is: 0.1 μm≤D10≤15 μm, and D10 can be, for example, 0.1 μm, 0.5 μm, 1 μm, 3 μm, 5 μm, 10 μm, 13 μm or 15 μm, etc. Of course, it can also be other values within the above range, which is not limited here.
[0068] In some embodiments, D90 of the silicon oxide raw material is: 0.5 μm≤D90≤30 μm, and D90 can be, for example, 0.5 μm, 1 μm, 5 μm, 10 μm, 20 μm, 25 μm or 30 μm, etc. Of course, it can also be other values within the above range, which is not limited here.
[0069] In some embodiments, the D50 of the silicon oxide raw material is: 0.3 μm≤D50≤25 μm, specifically 0.3 μm, 1 μm, 5 μm, 10 μm, 15 μm, 20 μm and 25 μm, etc. Of course, it can also be other values within the above range, which is not limited here.
[0070] In step S200 , the silicon oxide raw material and the solution containing the metal catalyst are mixed and solid-liquid separated to obtain a precursor. The mass ratio of the metal catalyst to the silicon oxide raw material is (0.00001-0.05):1.
[0071] The present application mixes the silicon oxide raw material and the metal catalyst in a liquid phase, so that the metal catalyst is adsorbed on the surface of the silicon oxide raw material through intermolecular adsorption. For silicon oxide raw materials with a larger specific surface area, the adsorption amount of the metal catalyst is greater. Moreover, the surface of the silicon oxide raw material contains hydroxyl functional groups. In a liquid phase environment, the metal ions in the metal catalyst can partially complex with the silicon oxide raw material and thus be adsorbed on the surface of the silicon oxide raw material, which is conducive to the adsorption of the metal catalyst on the surface of the silicon oxide raw material as much as possible.
[0072] In the above embodiment, the mass ratio of the metal catalyst to the silicon oxide raw material is (0.00001-0.05):1, which can be specifically 0.00001:1, 0.0001:1, 0.001:1, 0.01:1, 0.02:1, 0.03:1, 0.04:1 and 0.05:1, etc. Of course, it can also be other values within the above range, which is not limited here. Within the above-mentioned limited range, it can not only make the metal catalysts adsorbed by silicon oxide raw materials of different particle sizes in the same batch different, but also reduce the situation where too much metal catalyst in the precursor affects the subsequent lithium embedding, thereby improving the storage performance and rate performance of the negative electrode material. If the amount of metal catalyst added is too small, the metal catalyst adsorbed on the surface of the silicon oxide raw material is too small. In the subsequent lithium embedding process, it is easy to cause the pre-lithium degree of the precursor with a larger particle size to be lower, and the pre-lithium degree of the precursor with a smaller particle size to be higher, which is not conducive to improving the storage performance of the negative electrode material and the lithium ion conductivity. If the amount of metal catalyst added is too much, too much metal catalyst will be adsorbed on the surface of the silicon oxide raw material, resulting in too low a pre-lithiation degree of the precursor with smaller particle size, which is not conducive to improving the lithium ion conductivity and initial efficiency of the negative electrode material.
[0073] The particle sizes D10, D50 and D90 of the silicon oxide raw material of the present application are limited within the above ranges, and the limitation on the catalyst content can ensure that the surface of silicon oxide raw materials of different particle sizes adsorbs an appropriate amount of metal catalyst, and control the silicon oxide raw materials with different particle sizes to achieve different lithium and oxygen content ratios during the subsequent reaction with the lithium source, thereby improving the storage performance and rate performance of the negative electrode material, and can also improve the compaction density of the negative electrode material prepared from the silicon oxide raw material, and improve the processing performance of the negative electrode material.
[0074] In some embodiments, the solution containing the metal catalyst is prepared by the following method: mixing the metal catalyst and a solvent to obtain the solution containing the metal catalyst.
[0075] In some embodiments, the solution containing the metal catalyst further comprises a surfactant, i.e., the metal catalyst, the surfactant, and the solvent are uniformly mixed to obtain a solution containing the metal catalyst. The present application adds a surfactant to the solution containing the metal catalyst and then mixes it with the silicon raw material. The surfactant can reduce the surface energy of the silicon raw material, which is conducive to the adhesion of the metal catalyst to the surface of the silicon material. It is understood that the present application does not limit the method for mixing the metal catalyst, the surfactant, and the solvent. The metal catalyst can be added first, and then the surfactant is added. Alternatively, the metal catalyst and the surfactant can be mixed first and then added to the solvent.
[0076] In some embodiments, the surfactant includes at least one of sodium lauryl sulfate and stearic acid.
[0077] In some embodiments, the mass ratio of the surfactant to the silicon raw material is (0.001-0.2):1, specifically 0.001:1, 0.005:1, 0.01:1, 0.05:1, 0.08:1, 0.1:1, 0.15:1 or 0.2:1, etc. Of course, it can also be other values within the above range, which is not limited here.
[0078] In some embodiments, the metal catalyst includes at least one of a copper salt, a cobalt salt, a nickel salt, and an iron salt.
[0079] In some embodiments, the metal catalyst comprises at least one of ferric chloride, cobalt chloride, nickel chloride, and copper hydroxide.
[0080] In some embodiments, the solvent includes, but is not limited to, at least one of water, methanol, ethanol, ethylene glycol, propanol, isopropanol, glycerol, n-butanol, isobutanol, and amyl alcohol. Wet mixing the components in the solvent can improve the uniformity of the component mixing and facilitate rapid drying.
[0081] In some embodiments, the mixing time is 1 h to 10 h, for example, 1 h, 3 h, 5 h, 7 h, 9 h or 10 h, etc. Of course, it can also be other values within the above range, which is not limited here.
[0082] In some embodiments, methods of solid-liquid separation include but are not limited to filtration and centrifugation.
[0083] Step S300: mixing the precursor and the carbon source for carbonization.
[0084] In the above steps, the precursor and the carbon source are mixed and carbonized to achieve carbon coating. During the carbon coating process, the metal elements on the surface of the silicon oxide raw material can induce carbon deposition, providing cracking and bonding reaction sites for the carbon source molecules, which is beneficial to carbon coating on the surface of the metal catalyst and improving the carbon coating efficiency. Therefore, the small-particle precursor with a higher metal element content has a higher carbon coating amount and a thicker coating layer, while the large-particle precursor with a lower metal element content has a lower carbon coating amount and a thinner coating layer.
[0085] In some embodiments, the carbon source includes a gaseous carbon source. The present application achieves carbon coating by adopting a gaseous carbon source. On the one hand, the gaseous carbon source can achieve uniform coating of the precursor. At the same time, during the introduction of the gaseous carbon source, a part of the metal elements on the surface of the precursor will be separated from the silicon oxide material.
[0086] In some embodiments, the gaseous carbon source includes at least one of alkanes, cycloalkanes, alkenes, alkynes and aromatic hydrocarbons. Exemplarily, the gaseous carbon source includes but is not limited to at least one of acetylene, methane, propylene, benzene, ethanol, methanol, ethylene, propane and butane.
[0087] In some embodiments, the flow rate of the gaseous carbon source is 0.1 L / min to 500 L / min, specifically 0.1 L / min, 1 L / min, 10 L / min, 50 L / min, 100 L / min, 200 L / min, 300 L / min, 400 L / min, and 500 L / min, etc., and of course other values within the above range are also possible, which are not limited here. Within the above-mentioned limited range, it can be ensured that the material with smaller particle size forms a thicker carbon coating layer, and the material with larger particle size forms a thinner carbon coating layer, thereby achieving an improvement in the storage performance and rate performance of the negative electrode material.
[0088] In some embodiments, the temperature of the carbonization treatment is 600°C to 1000°C, for example, it can be 600°C, 650°C, 700°C, 750°C, 800°C, 850°C, 900°C, 950°C or 1000°C, etc. Of course, it can also be other values within the above range, which is not limited here.
[0089] In some embodiments, the carbonization treatment time is 0.5 h to 10 h, specifically 0.5 h, 1 h, 3 h, 5 h, 8 h or 10 h, etc. Of course, it can also be other values within the above range, which is not limited here.
[0090] In some embodiments, the carbonization treatment is performed in a protective gas atmosphere. Specifically, the protective gas atmosphere includes at least one of nitrogen, argon, and helium.
[0091] Step S400: mixing the carbonization product and a lithium source and performing heat treatment to obtain a negative electrode material.
[0092] In this step, due to the aforementioned control of the particle size range of the silicon oxide raw material and the content of the catalyst, when the carbonization product and the lithium source are mixed for heat treatment, the surface carbon layer thickness of the precursor with a larger particle size is less than the surface carbon layer thickness of the precursor with a smaller particle size. During the heat treatment process, the lithium element is more likely to enter the precursor with a larger particle size, and it is more difficult to enter the precursor with a smaller particle size. As a result, in the prepared negative electrode material, the content ratio of lithium and oxygen elements in the negative electrode material with a larger particle size is higher, and the pre-lithiation degree is high. Finally, the negative electrode material obtained is controlled to meet 0.6≤A1 / A2<1, which is beneficial to improving the rate performance and cycle performance of the negative electrode material. The content ratio of lithium and oxygen elements in the negative electrode material with a smaller particle size is lower, and the pre-lithiation degree is low, which is beneficial to improving the storage performance of the negative electrode material.
[0093] In some embodiments, the lithium source includes at least one of metallic lithium, lithium hydride, lithium carbonate, lithium hydroxide, lithium borohydride, and lithium aluminum hydride.
[0094] In some embodiments, the mass ratio of the silicon oxide raw material to the lithium source is 1:(0.05-0.5), for example, 1:0.05, 1:0.1, 1:0.2, 1:0.3, 1:0.4, or 1:0.5, and of course, other values within the above range are also possible and are not limited here. If the amount of lithium source added is too much, the capacity of the negative electrode material will be too low; if the amount of lithium source added is too little, the lithium-oxygen ratio of the negative electrode material will be too low, the lithium ion transport performance of the negative electrode material will be poor, and thus the initial efficiency of the negative electrode material will be too low.
[0095] In some embodiments, the heat treatment temperature is 400°C to 900°C, for example, 400°C, 50°C, 600°C, 700°C, 800°C, or 900°C, and other values within the above range are also possible. Preferably, the heat treatment temperature is 700°C to 900°C.
[0096] In some embodiments, the heat treatment time is 2 hours to 12 hours, specifically 2 hours, 5 hours, 7 hours, 9 hours, 10 hours or 12 hours, etc., and of course other values within the above range are also possible, and are not limited here. Preferably, the heat treatment time is 3 hours to 12 hours.
[0097] In some embodiments, the heat treatment is performed in a protective gas atmosphere, and the protective gas includes at least one of nitrogen, argon, and helium.
[0098] In some embodiments, after the heat treatment, the material obtained by the heat treatment is further subjected to at least one of screening and demagnetization; preferably, after the heat treatment, screening and demagnetization are performed in sequence.
[0099] In some embodiments, the screening method includes at least one of a fixed screen, a drum screen, a resonance screen, a roller screen, a vibrating screen, and a chain screen, and the screening mesh number is ≥500 mesh. Specifically, the screening mesh number can be 500 mesh, 600 mesh, 700 mesh, 800 mesh, etc. The particle size of the negative electrode material is controlled within the above range, which is beneficial to improving the cycle performance of the negative electrode material.
[0100] In some embodiments, the demagnetization equipment is any one of a permanent magnetic drum magnetic separator, an electromagnetic iron remover, and a pulsating high gradient magnetic separator. The purpose of demagnetization is to ultimately control the magnetic material content of the negative electrode material, reduce the discharge effect of the magnetic material on the lithium-ion battery, and ensure the safety of the battery during use.
[0101] In a third aspect, the present application provides a battery, comprising the negative electrode material described in the first aspect or the negative electrode material prepared by the preparation method described in the second aspect.
[0102] The following further illustrates the embodiments of the present application in multiple embodiments. The embodiments of the present application are not limited to the following specific embodiments. Within the scope of the unchanged main rights, appropriate changes can be made to the implementation.
[0103] Example 1
[0104] The method for preparing the negative electrode material of this embodiment includes the following steps:
[0105] (1) Dissolve 10g FeCl3 and 1g sodium lauryl sulfate in 1.2kg water, and take 1kg SiO y The (y=1)(D10=3.0μm, D50=5.5μm, D90=9.6μm) powder was placed in the above solution and soaked for 3h, then filtered and dried at 100℃.
[0106] (2) placing the material obtained in step (1) in a tubular furnace and heating it to 900° C. under nitrogen protection, introducing acetylene, keeping the temperature for 3 h, and then cooling to obtain a carbon-coated SiO material;
[0107] (3) 100 g of LiH was mixed with the material obtained in step (2), and then placed in a box furnace under nitrogen protection, heated to 800 ° C, kept warm for 4 h, taken out and sieved to obtain the negative electrode material.
[0108] The negative electrode material prepared in this embodiment includes a silicon-based material and a carbon coating layer distributed on the surface of the silicon-based material. The silicon-based material includes Li2SiO3 and silicon. The measurement parameters of D10, D50, D90, specific surface area, A value, A1 value, A2 value and A1 / A2 value of the negative electrode material are shown in Tables 1 and 2.
[0109] Example 2
[0110] The method for preparing the negative electrode material of this embodiment includes the following steps:
[0111] (1) Take 10g FeCl3 and 1g sodium lauryl sulfate and dissolve them in 1.2kg water. Take 1kg SiO y The (y=1)(D10=2.0 μm, D50=5.0 μm, D90=11 μm) powder was placed in the above solution and soaked for 3 h, then filtered and dried at 100°C.
[0112] (2) placing the material obtained in step (1) in a tubular furnace and heating it to 900° C. under nitrogen protection, introducing acetylene, keeping the temperature for 3 h, and then cooling to obtain a carbon-coated SiO material;
[0113] (3) 60 g of LiH was mixed with the material obtained in step (2), and then placed in a box furnace under nitrogen protection, heated to 800 ° C, kept warm for 4 h, taken out and sieved to obtain the negative electrode material.
[0114] The negative electrode material prepared in this embodiment includes a silicon-based material and a carbon coating layer distributed on the surface of the silicon-based material. The silicon-based material includes Li2SiO 3、 The measurement parameters of D10, D50, D90, specific surface area, A value, A1 value, A2 value and A1 / A2 value of Li2Si2O5 and silicon negative electrode materials are shown in Tables 1 and 2.
[0115] Example 3
[0116] The method for preparing the negative electrode material of this embodiment includes the following steps:
[0117] (1) Take 10g FeCl3 and 1g sodium lauryl sulfate and dissolve them in 1.2kg water. Take 1kg SiO y The (y=1)(D10=3.0 μm, D50=5.3 μm, D90=7.5 μm) powder was placed in the above solution and soaked for 3 h, then filtered and dried at 100°C.
[0118] (2) placing the material obtained in step (1) in a tubular furnace and heating it to 900° C. under nitrogen protection, introducing acetylene, keeping the temperature for 3 h, and then cooling to obtain a carbon-coated SiO material;
[0119] (3) 240 g of LiH was mixed with the material obtained in step (2), and then placed in a box furnace under nitrogen protection, heated to 800° C., kept warm for 4 h, taken out and sieved to obtain the negative electrode material.
[0120] The negative electrode material prepared in this embodiment includes a silicon-based material and a carbon coating layer distributed on the surface of the silicon-based material. The silicon-based material includes Li2SiO 3、 The measurement parameters of D10, D50, D90, specific surface area, A value, A1 value, A2 value and A1 / A2 value of Li4SiO4 and silicon negative electrode materials are shown in Tables 1 and 2.
[0121] Example 4
[0122] The method for preparing the negative electrode material of this embodiment includes the following steps:
[0123] (1) Take 10g FeCl3 and 1g sodium lauryl sulfate and dissolve them in 1.2kg water. Take 1kg SiO y The (y=1)(D10=2.0 μm, D50=5.0 μm, D90=11 μm) powder was placed in the above solution and soaked for 3 h, then filtered and dried at 100°C.
[0124] (2) placing the material obtained in step (1) in a tubular furnace and heating it to 900° C. under nitrogen protection, introducing acetylene, keeping the temperature for 3 h, and then cooling to obtain a carbon-coated SiO material;
[0125] (3) 240 g of LiH was mixed with the material obtained in step (2), and then placed in a box furnace under nitrogen protection, heated to 800° C., kept warm for 4 h, taken out and sieved to obtain the negative electrode material.
[0126] The negative electrode material prepared in this embodiment includes a silicon-based material and a carbon coating layer distributed on the surface of the silicon-based material. The silicon-based material includes Li2SiO3 and silicon. The measurement parameters of D10, D50, D90, specific surface area, A value, A1 value, A2 value and A1 / A2 value of the negative electrode material are shown in Tables 1 and 2.
[0127] Example 5
[0128] The difference from Example 1 is that FeCl3 is replaced by cobalt chloride.
[0129] The negative electrode material prepared in this embodiment includes a silicon-based material and a carbon coating layer distributed on the surface of the silicon-based material. The silicon-based material includes Li2SiO3 and silicon. The measurement parameters of D10, D50, D90, specific surface area, A value, A1 value, A2 value and A1 / A2 value of the negative electrode material are shown in Tables 1 and 2.
[0130] Example 6
[0131] The difference from Example 1 is that sodium lauryl sulfate is replaced by stearic acid.
[0132] The negative electrode material prepared in this embodiment includes a silicon-based material and a carbon coating layer distributed on the surface of the silicon-based material. The silicon-based material includes Li2SiO3 and silicon. The measurement parameters of D10, D50, D90, specific surface area, A value, A1 value, A2 value and A1 / A2 value of the negative electrode material are shown in Tables 1 and 2.
[0133] Example 7
[0134] The difference from Example 1 is that sodium lauryl sulfate in step (1) is not added.
[0135] The negative electrode material prepared in this embodiment includes a silicon-based material and a carbon coating layer distributed on the surface of the silicon-based material. The silicon-based material includes Li2SiO3 and silicon. The measurement parameters of D10, D50, D90, specific surface area, A value, A1 value, A2 value and A1 / A2 value of the negative electrode material are shown in Tables 1 and 2.
[0136] Example 8
[0137] The difference from Example 1 is that the SiO powder has D10=4.5 μm, D50=7.6 μm, and D90=11.9 μm.
[0138] The negative electrode material prepared in this embodiment includes a silicon-based material and a carbon coating layer distributed on the surface of the silicon-based material. The silicon-based material includes Li2SiO3 and silicon. The measurement parameters of D10, D50, D90, specific surface area, A value, A1 value, A2 value and A1 / A2 value of the negative electrode material are shown in Tables 1 and 2.
[0139] Example 9
[0140] The difference from Example 1 is that the SiO powder has D10=6.5 μm, D50=9.5 μm, and D90=16.2 μm.
[0141] The negative electrode material prepared in this embodiment includes a silicon-based material and a carbon coating layer distributed on the surface of the silicon-based material. The silicon-based material includes Li2SiO3 and silicon. The measurement parameters of D10, D50, D90, specific surface area, A value, A1 value, A2 value and A1 / A2 value of the negative electrode material are shown in Tables 1 and 2.
[0142] Example 10
[0143] The difference from Example 1 is that the SiO powder has D10=10.6 μm, D50=13.0 μm, and D90=25.1 μm.
[0144] The negative electrode material prepared in this embodiment includes a silicon-based material and a carbon coating layer distributed on the surface of the silicon-based material. The silicon-based material includes Li2SiO3 and silicon. The measurement parameters of D10, D50, D90, specific surface area, A value, A1 value, A2 value and A1 / A2 value of the negative electrode material are shown in Tables 1 and 2.
[0145] Example 11
[0146] The difference from Example 1 is that the added amount of FeCl3 is 0.01g.
[0147] The negative electrode material prepared in this embodiment includes a silicon-based material and a carbon coating layer distributed on the surface of the silicon-based material. The silicon-based material includes Li2SiO3 and silicon. The measurement parameters of D10, D50, D90, specific surface area, A value, A1 value, A2 value and A1 / A2 value of the negative electrode material are shown in Tables 1 and 2.
[0148] Example 12
[0149] The difference from Example 1 is that the added amount of FeCl3 is 20g.
[0150] The negative electrode material prepared in this embodiment includes a silicon-based material and a carbon coating layer distributed on the surface of the silicon-based material. The silicon-based material includes Li2SiO3 and silicon. The measurement parameters of D10, D50, D90, specific surface area, A value, A1 value, A2 value and A1 / A2 value of the negative electrode material are shown in Tables 1 and 2.
[0151] Example 13
[0152] The difference from Example 1 is that the added amount of FeCl3 is 50g.
[0153] The negative electrode material prepared in this embodiment includes a silicon-based material and a carbon coating layer distributed on the surface of the silicon-based material. The silicon-based material includes Li2SiO3 and silicon. The measurement parameters of D10, D50, D90, specific surface area, A value, A1 value, A2 value and A1 / A2 value of the negative electrode material are shown in Tables 1 and 2.
[0154] Comparative Example 1
[0155] (1) Dissolve 1g of sodium lauryl sulfate in 1.2kg of water and take 1kg of SiO y The (y=1)(D10=3.0μm, D50=5.5μm, D90=9.6μm) powder was placed in the above solution and soaked for 3h, then filtered and dried at 100℃.
[0156] (2) placing the material obtained in step (1) in a tubular furnace and heating it to 900° C. under nitrogen protection, introducing acetylene, keeping the temperature for 3 h, and then cooling to obtain a carbon-coated SiO material;
[0157] (3) 100 g of LiH was mixed with the material obtained in step (2), and then placed in a box furnace under nitrogen protection, heated to 800° C., kept warm for 4 h, taken out and sieved to obtain the negative electrode material.
[0158] Comparative Example 2
[0159] The difference from Example 1 is that the added amount of FeCl3 is 60g.
[0160] Performance Testing
[0161] 1. Particle size test method and element content test method:
[0162] (1) The D50, D10, and D90 of the negative electrode material are measured using a laser particle size analyzer. Specifically, the Mastersizer 3000 laser diffraction technology is used to measure the particle size of the negative electrode material. When the laser beam passes through the dispersed particle sample, the particle size measurement is completed by measuring the intensity of the scattered light. The data is then used to analyze and calculate the particle size distribution of the scattering spectrum. The scattering spectrum has a symmetrical distribution similar to a normal distribution. In the distribution, D90 is the particle size at which the cumulative volume distribution of the material particles is 90%, D10 is the particle size at which the cumulative volume distribution of the material particles is 10%, and D50 is the particle size at which the cumulative volume distribution of the material particles is 50%, also known as the median particle size. A classifier is used to screen the material for particle size, and negative electrode materials with a particle size less than or equal to D10 and negative electrode materials with a particle size greater than or equal to D90 are screened out.
[0163] (2) The ICP method was used to test the Li content in the negative electrode material. Test method: 0.500 g of the negative electrode material was placed in a clean platinum crucible, and then calcined at 750 ° C for 2 hours in an air atmosphere muffle furnace to completely remove the carbon element; the cooled calcined residue was fully reacted with 4 mL HNO3 and 6 mL HF mixed acid, and then the platinum crucible containing the solution was placed on a 350 ° C hot plate until the solvent was completely evaporated; after the crucible cooled, 6 mL HCl was added and heated until the residue was completely dissolved, and the volume was adjusted to 100 mL plastic volumetric flask; finally, the total Li element content of the negative electrode material was tested using an ICP spectrometer (Agilent 5800VDVICP-OES).
[0164] Oxygen content test method: The total O content of the material is measured using an ONH elemental analyzer. Specifically, the ONH elemental analyzer (ONH-2000) is used for testing. The specific operation is as follows: 10mg to 13mg of the negative electrode material is weighed and wrapped in nickel foil. The material is then placed in a graphite crucible in the ONH elemental analyzer for testing to determine the total O content in the negative electrode material.
[0165] The ratio of the total Li element content in the negative electrode material to the total O element content in the negative electrode material is recorded as the A value.
[0166] (3) Based on the negative electrode materials with a particle size less than or equal to D10 and the materials with a particle size greater than or equal to D90 screened out in (1), the Li content and O content of the negative electrode materials with a particle size less than or equal to D10 and the negative electrode materials with a particle size greater than or equal to D90 are tested according to (2) and the A1 and A2 values are calculated.
[0167] 2. XRD test method:
[0168] The grain size of the silicon material in the negative electrode material was determined using a PANalytical X'pert PRO X-ray diffractometer. The XRD of the negative electrode material was measured within a scanning range of 9.749° to 41.157°, with a scanning step of 0.013°, a scanning speed of 6.060° / min, a voltage of 40 kV, and a current of 40 mA. The file was opened with Jade 6, background removed and smoothed, and the Si peak within the range of 26° to 30° was fitted. The Scherrer formula was used: D = kλ / βcosθ, where D is the average grain size perpendicular to the Si reflection crystal plane (111), β-(radians) is the widening degree of the half-height width of the diffraction peak on the crystal plane = FWHM*π / 180, k is the Scherrer constant, which is 0.89, θ is the diffraction angle, and λ is the wavelength of the incident X-ray, which is 0.15406 nm. Full width at half maximum (FWHM) is a chromatographic term that refers to the width of a chromatographic peak at half its height. This refers to the distance between the points where a line drawn through the midpoint of the peak, parallel to the base of the peak, intersects the two sides of the peak. Both FHWM and θ can be obtained using XRD.
[0169] The XRD peak was measured using a Panatech X'pert Pro X-ray diffractometer, and then the Si peak in the XRD was fitted and analyzed using Xpert High Score software to calculate the silicon grain size.
[0170] Software instructions and parameter settings:
[0171] a. Open X'pert High Score software, click Open, find the file you just saved, and click OK to open the file;
[0172] b. Remove Ka2: right-click a blank area of the spectrum and click "Strip K-Alpha2", or select "Treatment" - "Strip K-Alpha2" in the toolbar, click "Strip K-Alpha2" in the pop-up dialog box, and then click "Replace";
[0173] c. Smoothing: Right-click a blank area of the spectrum, click "Smooth" in the menu, click "Smooth" in the pop-up dialog box, and then click "Replace"; select Quintic mode;
[0174] d. Define background: Right-click a blank area of the spectrum, click "Determine Background", click "Background" in the pop-up dialog box, and then click "Accept"; select 20 for Guanularity and 5 for blending factor;
[0175] e. Peak search: Right-click the blank area of the spectrum peak, click "Search Peaks", and select the peak search parameters in the pop-up dialog box:
[0176] Minimum significance: 2.0
[0177] Minimum tip width: 0.1
[0178] Maximum tip width: 5
[0179] Peak base width: 10, click "Search Peaks" in the dialog box on the right, and then click "Accept";
[0180] f. Peak fitting: Right-click a blank area on the spectrum, click "Set Manual Ranges", enter the angle range "26~30" in the pop-up dialog box, and then click "OK"; right-click a blank area on the spectrum again, click "Fit Profile", and do this several times until the peak data in the "peak list" on the right no longer changes. Record the angle of the peak in the range of about 28.4°.
[0181] (θ), full width at half maximum (FWHM), and peak height.
[0182] 3. Specific surface area test method:
[0183] The specific surface area of the negative electrode material was measured using the American Micromeritics TriStar 3000 specific surface area and pore size analyzer.
[0184] 4. Electrochemical performance test:
[0185] (1) First Coulomb efficiency test:
[0186] a. Preparation of lithium-ion batteries: The negative electrode materials prepared in the above examples and comparative examples were used as negative electrode active materials. After being uniformly mixed with conductive carbon black and CMC / SBR in a mass ratio of 75:15:10, the mixture was coated on copper foil to prepare a negative electrode sheet. A metal lithium sheet was used as the positive electrode sheet, and PP / PE was used as the separator to prepare a button battery.
[0187] b. Tested with a BlueDian Xinwei 5V / 10mA battery tester at a voltage of 1.5V and a current of 0.1C. First coulombic efficiency = first charge specific capacity / first discharge specific capacity.
[0188] (2) Cyclic performance test:
[0189] a. Preparation of lithium-ion batteries: The negative electrode materials prepared in the above examples and comparative examples were respectively mixed with graphite at a mass ratio of 15:85 to obtain negative electrode active materials. The negative electrode active materials, conductive carbon black, CMC, and SBR were then uniformly mixed at a mass ratio of 92:4:2:2, and coated on copper foil to prepare a negative electrode sheet. A metal lithium sheet was used as the positive electrode sheet, and PP / PE was used as a separator to prepare a button battery.
[0190] b. Tested with a BlueDian Xinwei 5V / 10mA battery tester at 1.5V and 0.1C. 50-cycle retention rate = 50th discharge capacity / first discharge capacity.
[0191] (3) Rate performance test:
[0192] a. Preparation of lithium-ion batteries: The negative electrode materials prepared in the above examples and comparative examples were respectively mixed with graphite at a mass ratio of 15:85 to obtain negative electrode active materials. The negative electrode active materials, conductive carbon black, CMC, and SBR were then uniformly mixed at a mass ratio of 92:4:2:2, and coated on copper foil to prepare negative electrode sheets. A metal lithium sheet was used as the positive electrode sheet, and PP / PE was used as the separator to prepare button batteries.
[0193] b. Tested with a BlueDian Xinwei 5V / 10mA battery tester, with a voltage of 1.5V and currents of 0.1C and 3C respectively. 3C / 0.1C = 3C discharge capacity / 0.1C discharge capacity.
[0194] (4) Storage performance test:
[0195] a. Preparation of lithium-ion batteries: The negative electrode material and graphite were composited to a capacity of 450 mAh / g as the negative electrode active material. A negative electrode sheet was prepared according to the active material formula: CMC (2200): SP: SWCNT: SBR (BM451B) = 95.1:1.4:1.45:0.05:2.0. The positive electrode used high-nickel NMC product M2-C2 (produced by BTR) and was prepared according to the formula of M2-C2: Solef 5130: Super P: GNLC-05 = 96.6:1.4:1.3:0.7. The positive and negative electrode sheets were then wound to form a 554065 model soft-pack battery cell. The cell then underwent various processes including injection, formation, and capacity grading to form a battery for testing. The battery design parameters are: positive electrode compaction 3.4g / cc, negative electrode compaction 1.65g / cc, negative electrode surface density 200g / m2, and N / P ratio design is 8.2%.
[0196] b. After the cells are divided into different capacities, charge them at 0.5C to 100% SOC. After storing at 60°C for 7 days, discharge them at 0.5C to the lower voltage limit, recording Capacity 1. Charge and discharge the battery for another week, recording the discharged capacity as Capacity 2. Battery Capacity 1 / Initial Capacity = Capacity Retention Rate, Battery Capacity 2 / Initial Capacity = Capacity Recovery Rate, and 1 - Capacity Recovery Rate = Irreversible Capacity Loss Rate.
[0197] Examples 1 to 13 of the present application are denoted as S1 to S13, and Comparative Examples 1 to 2 are denoted as D1 to D2. The results of the above performance tests are as follows:
[0198] Table 1. A value, A1 value, A2 value of each embodiment and comparative example
[0199] Table 2. Parameters of negative electrode materials of various examples and comparative examples
[0200] As shown in Tables 1 to 2, the negative electrode materials prepared in Examples 1 to 13 of the present application are negative electrode materials prepared by adding a metal catalyst to a silicon oxide material. The smaller particles and the larger particles in the negative electrode material particles have different pre-lithiation degrees, and the ratio A1 of the mass proportion of lithium element to the mass proportion of oxygen element in the particles with smaller particle size and the ratio A2 of the mass proportion of lithium element to the mass proportion of oxygen element in the particles with larger particle size are controlled between 0.6 and 1 (excluding 1), so that the negative electrode material can improve the storage performance while improving the rate performance and cycle performance.
[0201] No metal catalyst was added in Comparative Example 1. As can be seen from the contents of Table 1, the A1 value and A2 value of the negative electrode material prepared in Comparative Example 1 are both within the specified range of the present application, but the A1 / A2 value does not meet the specified range of the present application, indicating that no metal catalyst was added in Comparative Example 1, and in the subsequent pre-lithiation process, it is impossible to selectively pre-lithiate silicon oxide raw materials of different particle sizes, resulting in poor storage performance, cycle performance and rate performance of the negative electrode material.
[0202] In Comparative Example 2, excessive metal catalyst was added, resulting in excessive metal catalyst adsorbed on the surface of the silicon oxide raw material, especially on the surface of the small-particle negative electrode material with a larger specific surface area, resulting in a lower pre-lithiation degree of the small-particle negative electrode material, causing A1 / A2 to not meet the specified range of this application, and the storage performance and rate performance of the negative electrode material are poor.
[0203] The applicant declares that while the above-mentioned embodiments are used to illustrate the detailed process equipment and process flow of the present application, the present application is not limited to the above-mentioned detailed process equipment and process flow, which does not mean that the present application must rely on the above-mentioned detailed process equipment and process flow in order to be implemented. Those skilled in the art should understand that any improvements to the present application, equivalent replacements for the raw materials of the present application's products, addition of auxiliary ingredients, and selection of specific methods, etc., fall within the scope of protection and disclosure of the present application.
Claims
1. A negative electrode material, characterized in that: The negative electrode material comprises a silicon-based material, wherein the silicon-based material contains oxygen and lithium, and the negative electrode material is tested by a laser particle size analyzer to obtain a particle size D10 of 10% of the cumulative volume distribution and a particle size D90 of 90% of the cumulative volume distribution; The ratio of the mass proportion of lithium element to the mass proportion of oxygen element in particles with a particle size less than or equal to D10 in the negative electrode material is recorded as A1, and the ratio of the mass proportion of lithium element to the mass proportion of oxygen element in particles with a particle size greater than or equal to D90 in the negative electrode material is recorded as A2, 0.6≤A1 / A2<1.
2. The negative electrode material according to claim 1, characterized in that The ratio of the mass proportion of the lithium element in the negative electrode material to the mass proportion of the oxygen element in the negative electrode material is recorded as A, and A is 0.1 to 0.
7.
3. The negative electrode material according to claim 1, characterized in that The A1 is 0.1 to 0.
65.
4. The negative electrode material according to claim 1, characterized in that The A2 is 0.15 to 0.
7.
5. The negative electrode material according to claim 1, characterized in that The silicon-based material includes at least one of a silicon-oxygen material and silicon, and the silicon-oxygen material includes at least one of Li2SiO3, Li2Si2O5 and Li4SiO4.
6. The negative electrode material according to claim 1, characterized in that 0.1μm≤D10≤15μm.
7. The negative electrode material according to claim 1, characterized in that 0.5μm≤D90≤30μm.
8. The negative electrode material according to claim 1, characterized in that 0.3μm≤D50≤25μm.
9. The negative electrode material according to claim 1, characterized in that The negative electrode material further includes a coating layer distributed on at least a portion of the surface of the silicon-based material.
10. The negative electrode material according to claim 9, characterized in that The negative electrode material includes at least one of the following features (1) to (3): (1) The coating layer includes a carbon layer; (2) For negative electrode materials with a particle size smaller than D10, the coating thickness is 15 nm to 1000 nm; (3) For negative electrode materials with a particle size greater than D90, the coating thickness is 10 nm to 900 nm.
11. The negative electrode material according to claim 1, characterized in that The lithium content in the negative electrode material is 2 wt% to 20 wt%.
12. The negative electrode material according to claim 1, characterized in that The specific surface area of the negative electrode material is 0.1 m 2 / g~50m 2 / g.
13. The negative electrode material according to claim 1, characterized in that The oxygen content in the negative electrode material is 15 wt% to 45 wt%.
14. The negative electrode material according to claim 1, characterized in that The negative electrode material contains a metal element, and the metal element includes at least one of iron, cobalt, nickel and copper; and / or the content of the metal element in the negative electrode material is 1 ppm to 5000 ppm.
15. A battery, characterized in that: The battery comprises the negative electrode material according to any one of claims 1 to 14.
Citation Information
Patent Citations
Method for preparing lithium titanate battery negative electrode material from anatase titanium dioxide
CN110407248A
Anode active material and preparation method and application thereof
CN111180693A
Negative electrode active material for battery, preparation method of negative electrode active material, battery negative electrode and battery
CN112018367A
Lithium ion battery negative electrode material, preparation method and application
CN116779792A
Negative electrode material, preparation method thereof and lithium ion battery
CN117497738A