Polycarbonate all-solid-state electrolyte containing nano powder rubber, preparation method of polycarbonate all-solid-state electrolyte and lithium ion battery
By using polycarbonate all-solid electrolyte containing nanopowder rubber in lithium-ion batteries, the problems of low ionic conductivity and metal lithium dendrites of existing battery electrolytes are solved, and higher conductivity and cycling performance are achieved, enhancing the safety and stability of the battery.
Patent Information
- Application Number
- CN202311498949.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2023-11-10
- Publication Date
- 2025-05-13
AI Technical Summary
The solid electrolyte ion conductivity of existing lithium-ion batteries is low, and metal lithium produces dendrites during circulation, resulting in short circuits, affecting the stability and safety of the battery cycle.
Using a polycarbonate all-solid electrolyte containing nanopowder rubber, electrolyte with higher conductivity and better cycle performance was prepared by mixing polycarbonate, lithium salt, plastic crystals and nanopowder rubber with organic solvents and coating on a porous support material layer for vacuum drying.
It improves conductivity and cycling performance, reduces the porosity of solid-state batteries, enhances the safety and stability of the batteries, and simplifies the preparation method of electrolytes.
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Abstract
Description
Technical Field
[0001] The present invention belongs to the field of lithium ion batteries, and in particular, relates to a polycarbonate all-solid electrolyte containing nano-powder rubber, a preparation method of the all-solid electrolyte, and a lithium ion battery. Background Art
[0002] As the application of lithium-ion batteries becomes more and more extensive, people are studying them more and more deeply. The main components of lithium-ion batteries include positive electrodes, negative electrodes and electrolytes. As an important part of the battery, the electrolyte is closely related to the performance of the battery. The electrolytes of commercial lithium-ion batteries are all liquid, with poor safety and energy density close to the theoretical limit. There is limited room for future development, so researchers have turned their attention to solid electrolytes.
[0003] Solid polymer electrolytes have many advantages such as low cost, high safety, and good integration, and are considered to be the development direction of the next generation of electrolytes.
[0004] In addition, solid-state batteries still face some urgent problems before they can be applied on a large scale. For example, compared with liquid electrolytes, polymer solid electrolytes have low ionic conductivity; and during the battery cycle, metal lithium forms dendrites due to uneven deposition, which penetrate the electrolyte and cause short circuits, seriously affecting the battery cycle stability and safety. Summary of the invention
[0005] In view of the above situation, the purpose of the present invention is to provide a polycarbonate all-solid electrolyte containing nano-powder rubber and a preparation method thereof and a lithium-ion battery. The all-solid electrolyte has higher conductivity and better cycle performance.
[0006] The first aspect of the present invention provides a polycarbonate all-solid electrolyte containing nano-powder rubber, the all-solid electrolyte comprising a polycarbonate all-solid electrolyte layer and a porous supporting material layer; the polycarbonate all-solid electrolyte layer comprises polycarbonate, lithium salt, plastic crystals and nano-powder rubber; based on the total weight of the polycarbonate all-solid electrolyte layer, the content of the polycarbonate is 25-60wt%, the content of the lithium salt is 20-50wt%, the content of the plastic crystals is 3-35wt%, and the content of the nano-powder rubber is 3-35wt%.
[0007] The second aspect of the present invention provides a method for preparing the above-mentioned polycarbonate all-solid electrolyte containing nano-powder rubber, the preparation method comprising the following steps:
[0008] 1) mixing polycarbonate, lithium salt, plastic crystal and nano-powder rubber with an organic solvent to obtain a mixed solution;
[0009] 2) coating the mixed solution on a porous support material layer and performing vacuum drying to obtain an all-solid electrolyte.
[0010] The third aspect of the present invention provides a lithium ion battery, which includes a positive electrode, a negative electrode and an electrolyte, wherein the electrolyte is the above-mentioned polycarbonate all-solid electrolyte containing nano-powder rubber.
[0011] Compared with the prior art, the present invention has the following advantages:
[0012] 1. The nano-powder rubber in the system of the present invention has swelling properties in organic solvents, which is beneficial to the movement and diffusion of lithium salts in the system and provides another lithium ion transmission channel in the electrolyte. In addition, the nano-powder rubber has the dual characteristics of elasticity and rigidity and also takes into account many requirements such as mechanical properties and ion transmission between electrodes. The particle size of the nano-powder rubber is conducive to reducing the porosity of the solid electrolyte and promoting the improvement of the cycle performance of the solid-state battery.
[0013] 2. The self-diffusion of the plastic crystals and the rotation of its molecules or ions in the present invention can promote the movement of lithium ions, thereby obtaining a higher ionic conductivity. Moreover, it has the dual characteristics of solid and liquid states and also takes into account many requirements such as mechanical properties and ion transmission between electrodes.
[0014] 3. The substrate used for the solid electrolyte of the present invention is biodegradable polycarbonate, which is an environmentally friendly material. Combining the polycarbonate electrolyte layer with the porous support material layer can ensure the electrical conductivity and mechanical properties of the solid electrolyte, and the comprehensive performance is good.
[0015] 4. Compared with liquid electrolytes or mixed electrolytes, the all-solid electrolyte of the present invention is safer and non-flammable.
[0016] 5. The preparation method of the all-solid electrolyte of the present invention is simple and easy, and the raw materials are easily available, which is conducive to promotion.
[0017] Other features and advantages of the present invention will be described in detail in the following detailed description. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] Exemplary embodiments of the present invention will be described in more detail with reference to the accompanying drawings.
[0019] Figure 1 It is a schematic diagram comparing the conductivity of the electrolytes prepared in Examples 1, 6-7 and Comparative Examples 1-2 at 25°C. DETAILED DESCRIPTION
[0020] The specific embodiments of the present invention are described in detail below. It should be understood that the specific embodiments described herein are only used to illustrate and explain the present invention, and are not used to limit the present invention.
[0021] The invention provides a polycarbonate all-solid electrolyte containing nano-powder rubber. The all-solid electrolyte comprises a polycarbonate all-solid electrolyte layer and a porous supporting material layer; the polycarbonate all-solid electrolyte layer comprises polycarbonate, lithium salt, plastic crystals and nano-powder rubber; based on the total weight of the polycarbonate all-solid electrolyte layer, the content of the polycarbonate is 25-60wt%, the content of the lithium salt is 20-50wt%, the content of the plastic crystals is 3-35wt%, and the content of the nano-powder rubber is 3-35wt%.
[0022] Preferably, the polycarbonate all-solid-state electrolyte layer is composed of polycarbonate, lithium salt, plastic crystals and nano-powder rubber. Based on the total weight of the polycarbonate all-solid-state electrolyte layer, the content of polycarbonate is 35-55wt%, preferably 40-50wt%; the content of lithium salt is 25-40wt%, preferably 27-37wt%; the content of plastic crystals is 5-25wt%, preferably 8-15wt%; the content of nano-powder rubber is 5-25wt%, preferably 8-15wt%.
[0023] According to the present invention, the polycarbonate may be polyolefin carbonate, preferably polylower olefin carbonate, more preferably polyethylene carbonate and / or polypropylene carbonate. The low-carbon olefin in the present invention is an olefin having 2-4 carbon atoms.
[0024] The lithium salt used in the present invention can be a lithium salt conventionally used in the art, and the lithium salt includes but is not limited to one or more of lithium bis(trifluoromethanesulfonyl)imide, lithium hexafluorophosphate, lithium bis(fluorosulfonyl)imide, lithium perchlorate, lithium tetrafluorophosphate, lithium difluorophosphate, lithium bis(oxalatoborate) and lithium difluorooxalatoborate; preferably lithium hexafluorophosphate and / or lithium bis(trifluoromethanesulfonyl)imide.
[0025] According to the present invention, the plastic crystal may be at least one of succinonitrile, Li2SO4 and α-Na2SO4, preferably succinonitrile.
[0026] The present invention, nano powder rubber can use the conventional nano powder rubber used in the prior art, for example, the nano powder rubber can be at least one of nano nitrile rubber, nano carboxyl nitrile rubber, nano styrene butadiene rubber, nano carboxyl styrene butadiene rubber and nano butyl acrylate rubber, preferably nano nitrile rubber and / or nano carboxyl nitrile rubber. The particle diameter of the nano powder rubber can be a conventional particle diameter, such as 20-500nm, preferably 20-200nm.
[0027] Since the polycarbonate all-solid electrolyte layer of the present invention is relatively soft, it is used in combination with a support layer. The porous support material layer in the present invention can be at least one of a plant cellulose film, a polyethylene terephthalate film and a glass fiber film, preferably a plant cellulose film and / or a polyethylene terephthalate film, and more preferably a polyethylene terephthalate film. The porous support material layer can be purchased or prepared by conventional methods.
[0028] When used in lithium-ion batteries, the all-solid electrolyte is usually prepared in a film shape, and its thickness can be set as required, for example, 80-350 μm, wherein the thickness of the polycarbonate all-solid electrolyte layer is 60-200 μm.
[0029] According to a second aspect of the present invention, the present invention provides a method for preparing the above-mentioned polycarbonate all-solid electrolyte containing nano-powder rubber, the preparation method comprising the following steps:
[0030] 1) mixing polycarbonate, lithium salt, plastic crystal and nano-powder rubber with an organic solvent to obtain a mixed solution;
[0031] 2) coating the mixed solution on a porous support material layer and performing vacuum drying to obtain an all-solid electrolyte.
[0032] In step 1) of the present invention, the organic solvent may be at least one of N,N-dimethylformamide, N,N-dimethylacetamide, acetonitrile and acetone, preferably acetonitrile and / or N,N-dimethylformamide, and more preferably N,N-dimethylformamide.
[0033] According to the present invention, in step 1), the mass concentration of the solute in the mixed solution is 10-40%.
[0034] In the present invention, the amounts of polycarbonate, lithium salt, plastic crystal and nano-powder rubber used in preparing the polycarbonate all-solid electrolyte layer are determined according to the content of each component in the polycarbonate all-solid electrolyte layer, and the loss during the preparation process is ignored.
[0035] In step 1) of the present invention, the mixing is carried out under stirring conditions, and the components of the polycarbonate all-solid electrolyte layer are mixed with the organic solvent, and the polycarbonate and the lithium salt are fully stirred to completely dissolve to obtain a mixed solution. The mixing conditions may include: stirring at 40-75° C. for 5-12 hours.
[0036] According to the present invention, in step 2), the vacuum drying temperature is 25-80° C. and the time is 12-48 hours.
[0037] In the present invention, the mixed solution is coated on the porous support material layer to form a liquid film, and the liquid film is vacuum dried to obtain a polycarbonate all-solid electrolyte layer. The coating can be carried out by various conventional methods in the art, such as solution casting.
[0038] According to the third aspect of the present invention, the present invention further provides a lithium ion battery, the lithium ion battery comprising a positive electrode, a negative electrode and an electrolyte, wherein the electrolyte is the above-mentioned polycarbonate all-solid electrolyte containing nano-powder rubber.
[0039] In the present invention, the positive electrode and the negative electrode of the lithium-ion battery can be various conventional positive and negative electrode materials, and the present invention has no special limitation on this.
[0040] The present invention will be further described below in conjunction with embodiments, but the scope of the present invention is not limited to these embodiments.
[0041] In the following examples and comparative examples, the relevant raw materials and data are obtained as follows:
[0042] Polypropylene carbonate: Empower Materia Co., Ltd., Japan.
[0043] Polyethylene carbonate: Empower Materia Co., Ltd., Japan.
[0044] Nano-nitrile rubber: prepared according to patent document CN1152082C.
[0045] Nano carboxyl nitrile rubber: prepared according to patent document CN1152082C.
[0046] Nano-styrene-butadiene rubber: prepared according to patent document CN1152082C.
[0047] Nano carboxyl styrene butadiene rubber: prepared with reference to patent document CN1152082C.
[0048] Nano butyl acrylate rubber: prepared according to patent document CN1152082C.
[0049] Lithium bis(trifluoromethanesulfonate): Shanghai MacLean Biochemical Technology Co., Ltd.
[0050] Lithium bis(fluorosulfonyl)imide: Shanghai MacLean Biochemical Technology Co., Ltd.
[0051] Succinonitrile: Beijing Inokai Technology Co., Ltd.
[0052] Li2SO4: Beijing Inokai Technology Co., Ltd.
[0053] Polyethylene terephthalate film: 30 μm, Toray Industries, Japan.
[0054] Polyethylene terephthalate film: 120 μm, Toray Industries, Japan.
[0055] Plant cellulose film: 40μm, Futamura Co., Ltd., Japan.
[0056] Plant cellulose film: 60μm, Futamura Co., Ltd., Japan.
[0057] Glass fiber film: 30 μm, Futamura Co., Ltd., Japan.
[0058] N,N-Dimethylformamide: Beijing Inokai Technology Co., Ltd.
[0059] N,N-Dimethylacetamide: Beijing Inokai Technology Co., Ltd.
[0060] Acetonitrile: Beijing Bailingwei Technology Co., Ltd.
[0061] Acetone: Beijing Inokai Technology Co., Ltd.
[0062] 1. BET specific surface area test: After the test sample was vacuum degassed at 80°C for 12 h, the nitrogen adsorption-desorption isotherm was measured at a liquid nitrogen temperature of 77 K, and the Brunauer-Emmett-Teller-(BET) specific surface area was calculated.
[0063] 2. Conductivity test: The room temperature (25° C.) conductivity of the all-solid electrolytes prepared in each embodiment and comparative example was tested using electrochemical impedance spectroscopy.
[0064] 3. Cycle performance test: A solid-state battery was prepared by assembling a lithium iron phosphate positive electrode, a lithium metal negative electrode and a solid electrolyte prepared in the embodiment or comparative example, and then a cycle performance test was performed at a charge and discharge rate of 0.5C.
[0065] Example 1
[0066] 5g polypropylene carbonate, 0.85g succinonitrile, 0.85g nano-nitrile rubber, 33g N,N-dimethylformamide, and 3.48g lithium bis(trifluoromethanesulfonate imide) were added to a 100mL flask, stirred at 40°C for 8h to obtain a uniform mixed solution, and the mixed solution was cast on a polyethylene terephthalate film and dried in a vacuum oven at 60°C for 24h to obtain a polycarbonate all-solid electrolyte. The polycarbonate all-solid electrolyte is in a film shape with a thickness of 90μm, wherein the thickness of the polycarbonate all-solid electrolyte layer is 60μm, and the performance parameters of the polycarbonate all-solid electrolyte are shown in Tables 1 and Figure 1 shown.
[0067] Example 2
[0068] 4g polypropylene carbonate, 0.65g succinonitrile, 0.65g nano-carboxylated nitrile rubber, 20g acetonitrile, and 3g lithium bis(trifluoromethanesulfonate imide) were added to a 250mL flask, stirred at 50°C for 10h to obtain a uniform mixed solution, the mixed solution was cast on a plant cellulose film, and dried in a vacuum oven at 80°C for 24h to obtain a polycarbonate all-solid electrolyte. The polycarbonate all-solid electrolyte is in a film shape with a thickness of 120μm, wherein the thickness of the polycarbonate all-solid electrolyte layer is 80μm, and the performance parameters of the polycarbonate all-solid electrolyte are shown in Table 1.
[0069] Example 3
[0070] 5g polypropylene carbonate, 0.8g succinonitrile, 0.8g nano-nitrile rubber, 32g N,N-dimethylacetamide, and 3.25g lithium bis(fluorosulfonyl)imide were added to a 100mL flask, stirred at 40°C for 6h to obtain a uniform mixed solution, cast the mixed solution on a glass fiber film, and dried in a vacuum oven at 70°C for 24h to obtain a polycarbonate all-solid electrolyte. The polycarbonate all-solid electrolyte is in a film shape, and the thickness of the film is 110μm, wherein the thickness of the polycarbonate all-solid electrolyte layer is 80μm, and the performance parameters of the polycarbonate all-solid electrolyte are shown in Table 1.
[0071] Example 4
[0072] 3.2g polypropylene carbonate, 0.5g succinonitrile, 0.5g nano-carboxyl nitrile rubber, 16g acetone, and 1.6g lithium bis(fluorosulfonyl)imide were added to a 250mL flask, stirred at 70°C for 7h to obtain a uniform mixed solution, and the mixed solution was cast on a polyethylene terephthalate film, and dried in a vacuum oven at 80°C for 24h to obtain a polycarbonate all-solid electrolyte. The polycarbonate all-solid electrolyte is in a film shape, and the thickness of the film is 320μm, wherein the thickness of the polycarbonate all-solid electrolyte layer is 200μm, and the performance parameters of the polycarbonate all-solid electrolyte are shown in Table 1.
[0073] Example 5
[0074] 3.5g polypropylene carbonate, 0.55g succinonitrile, 0.55g nano-styrene butadiene rubber, 20g acetonitrile, and 3g lithium bis(trifluoromethanesulfonate imide) were added to a 250mL flask, stirred at 50°C for 10h to obtain a uniform mixed solution, and the mixed solution was cast on a plant cellulose film, and dried in a vacuum oven at 80°C for 24h to obtain a polycarbonate all-solid electrolyte. The polycarbonate all-solid electrolyte is in a film shape, and the thickness of the film is 120μm, wherein the thickness of the polycarbonate all-solid electrolyte layer is 80μm, and the performance parameters of the polycarbonate all-solid electrolyte are shown in Table 1.
[0075] Example 6
[0076] 4g polypropylene carbonate, 0.6g Li2SO4, 0.6g nano carboxyl styrene butadiene rubber, 18g acetonitrile, and 3g lithium bis(trifluoromethanesulfonate imide) were added to a 250mL flask, stirred at 50°C for 10h to obtain a uniform mixed solution, the mixed solution was cast on a plant cellulose film, and dried in a vacuum oven at 80°C for 24h to obtain a polycarbonate all-solid electrolyte. The polycarbonate all-solid electrolyte is in a film shape, the thickness of the film is 120μm, the thickness of the polycarbonate all-solid electrolyte layer is 80μm, and the performance parameters of the polycarbonate all-solid electrolyte are shown in Tables 1 and Figure 1 shown.
[0077] Example 7
[0078] 3g of polyvinyl carbonate, 0.3g of succinonitrile, 0.3g of nano-butyl acrylate rubber, 18g of acetonitrile, and 3g of lithium bis(trifluoromethanesulfonate imide) were added to a 250mL flask, stirred at 50°C for 10h to obtain a uniform mixed solution, and the mixed solution was cast on a plant cellulose film and dried in a vacuum oven at 80°C for 24h to obtain a polycarbonate all-solid electrolyte. The polycarbonate all-solid electrolyte is in a film shape, and the thickness of the film is 220μm, wherein the thickness of the polycarbonate all-solid electrolyte layer is 160μm, and the performance parameters of the polycarbonate all-solid electrolyte are shown in Tables 1 and Figure 1 shown.
[0079] Comparative Example 1
[0080] 5g polypropylene carbonate, 0.85g nano-nitrile rubber, 33g N,N-dimethylformamide, and 3.48g lithium bis(trifluoromethanesulfonate imide) were added to a 100mL flask, stirred at 40°C for 8h to obtain a uniform mixed solution, and the mixed solution was cast on a polyethylene terephthalate film and dried in a vacuum oven at 60°C for 24h to obtain a polycarbonate all-solid electrolyte. The polycarbonate all-solid electrolyte is in a film shape with a thickness of 90μm, wherein the thickness of the polycarbonate all-solid electrolyte layer is 60μm, and the performance parameters of the polycarbonate all-solid electrolyte are shown in Tables 1 and Figure 1 shown.
[0081] Comparative Example 2
[0082] 5 g polypropylene carbonate, 0.85 g succinonitrile, 33 g N, N-dimethylformamide, and 3.48 g lithium bis(trifluoromethanesulfonate imide) were added to a 100 mL flask, stirred at 40°C for 8 h to obtain a uniform mixed solution, and the mixed solution was cast on a polyethylene terephthalate film and dried in a vacuum oven at 60°C for 24 h to obtain a polycarbonate all-solid electrolyte. The polycarbonate all-solid electrolyte is in a film shape with a thickness of 90 μm, wherein the thickness of the polycarbonate all-solid electrolyte layer is 60 μm, and the performance parameters of the polycarbonate all-solid electrolyte are shown in Tables 1 and Figure 1 shown.
[0083] Table 1
[0084]
[0085]
[0086] From Table 1 and Figure 1 It can be seen that the addition of nano-powder rubber reduces the specific surface area of the solid electrolyte membrane, provides better conditions for limiting the growth of lithium-ion dendrites, helps to improve the cycle performance, and has more cycles and higher conductivity. The sample with only powder rubber but no plastic crystals has weak conductivity and poor cycle performance. Combining nano-powder rubber and plastic crystals in the solid electrolyte can ensure that the solid electrolyte has higher conductivity and better cycle performance.
[0087] The embodiments of the present invention have been described above, and the above description is exemplary, not exhaustive, and is not limited to the disclosed embodiments. Many modifications and changes will be apparent to those skilled in the art without departing from the scope and spirit of the described embodiments.
[0088] The endpoints and any values of the ranges disclosed in this article are not limited to the precise ranges or values, and these ranges or values should be understood to include values close to these ranges or values. For numerical ranges, the endpoint values of each range, the endpoint values of each range and the individual point values, and the individual point values can be combined with each other to obtain one or more new numerical ranges, which should be considered as specifically disclosed in this article.
Claims
1. A polycarbonate all-solid electrolyte containing nano-powder rubber, characterized in that: The all-solid electrolyte comprises a polycarbonate all-solid electrolyte layer and a porous supporting material layer; the polycarbonate all-solid electrolyte layer comprises polycarbonate, lithium salt, plastic crystals and nanometer powder rubber; based on the total weight of the polycarbonate all-solid electrolyte layer, the content of the polycarbonate is 25-60wt%, the content of the lithium salt is 20-50wt%, the content of the plastic crystals is 3-35wt%, and the content of the nanometer powder rubber is 3-35wt%.
2. The polycarbonate all-solid electrolyte containing nano-powder rubber according to claim 1, wherein: Based on the total weight of the polycarbonate all-solid electrolyte layer, the content of the polycarbonate is 35-55wt%, preferably 40-50wt%; the content of the lithium salt is 25-40wt%, preferably 27-37wt%; the content of the plastic crystal is 5-25wt%, preferably 8-15wt%; the content of the nano powder rubber is 5-25wt%, preferably 8-15wt%.
3. The polycarbonate all-solid electrolyte containing nano-powder rubber according to claim 1, wherein: The polycarbonate is polyolefin carbonate, preferably polylower olefin carbonate, more preferably polyethylene carbonate and / or polypropylene carbonate.
4. The polycarbonate all-solid electrolyte containing nano-powder rubber according to claim 1, wherein: The lithium salt is at least one of lithium bis(trifluoromethanesulfonyl)imide, lithium hexafluorophosphate, lithium bis(fluorosulfonyl)imide, lithium perchlorate, lithium tetrafluorophosphate, lithium difluorophosphate, lithium bis(oxalatoborate) and lithium difluorooxalatoborate; preferably lithium hexafluorophosphate and / or lithium bis(trifluoromethanesulfonyl)imide.
5. The polycarbonate all-solid electrolyte containing nano-powder rubber according to claim 1, wherein: The plastic crystal is at least one of succinonitrile, Li2SO4 and α-Na2SO4, preferably succinonitrile.
6. The polycarbonate all-solid electrolyte containing nano-powder rubber according to claim 1, wherein: The nano powder rubber is at least one of nano nitrile rubber, nano carboxylated nitrile rubber, nano styrene butadiene rubber, nano carboxylated styrene butadiene rubber and nano butyl acrylate rubber, preferably nano nitrile rubber and / or nano carboxylated nitrile rubber.
7. The polycarbonate all-solid electrolyte containing nano-powder rubber according to claim 1, wherein: The porous support material layer is at least one of a plant cellulose film, a polyethylene terephthalate film and a glass fiber film, preferably a plant cellulose film and / or a polyethylene terephthalate film, and more preferably a polyethylene terephthalate film.
8. The polycarbonate all-solid electrolyte containing nano-powder rubber according to claim 1, wherein: The all-solid electrolyte is in a film shape with a thickness of 80-350 μm, wherein the thickness of the polycarbonate all-solid electrolyte layer is 60-200 μm.
9. The method for preparing a polycarbonate all-solid electrolyte containing nano-powder rubber according to any one of claims 1 to 8, characterized in that: The preparation method comprises the following steps: 1) mixing polycarbonate, lithium salt, plastic crystal and nano-powder rubber with an organic solvent to obtain a mixed solution; 2) coating the mixed solution on a porous support material layer and performing vacuum drying to obtain an all-solid electrolyte.
10. The method for preparing a polycarbonate all-solid electrolyte containing nano-powder rubber according to claim 9, wherein: In step 1), the organic solvent is at least one of N,N-dimethylformamide, N,N-dimethylacetamide, acetonitrile and acetone, preferably acetonitrile and / or N,N-dimethylformamide, and more preferably N,N-dimethylformamide; the mass concentration of the solute in the mixed solution is 10-40%; the mixing conditions include: stirring at 40-75° C. for 5-12 hours; In step 2), the vacuum drying temperature is 25-80° C. and the time is 12-48 hours.
11. A lithium ion battery, characterized in that: The lithium-ion battery comprises a positive electrode, a negative electrode and an electrolyte, wherein the electrolyte is a polycarbonate all-solid electrolyte containing nano-powder rubber as claimed in any one of claims 1 to 8.
Citation Information
Patent Citations
Full vulcanized powdered rubber with controllable particle diameter, preparing method thereof
CN1152082C