Negative electrode pieces for sodium-ion batteries, electrochemical apparatus and electronic devices

The carbon-coated negative electrode piece for sodium-ion batteries addresses dendrite formation issues by enhancing sodium metal nucleation and reducing overpotential, ensuring safe and high-energy-density operation.

JP2026123080APending Publication Date: 2026-07-29CONTEMPORARY AMPEREX TECHNOLOGY (HONG KONG) LIMITED
View PDF 0 Cites 0 Cited by

Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
CONTEMPORARY AMPEREX TECHNOLOGY (HONG KONG) LIMITED
Filing Date
2026-04-17
Publication Date
2026-07-29

AI Technical Summary

Technical Problem

Current sodium-ion batteries face challenges due to the low chemical stability of sodium metal, which leads to dendrite formation during electrochemical cycles, limiting their commercialization and cycle performance.

Method used

A negative electrode piece for sodium-ion batteries is designed with a carbon material coating on a current collector, thickness ≤10 μm, containing a carbon material and polymer adhesive, which suppresses dendrite formation and improves cycle performance by reducing sodium intercalation overpotential.

Benefits of technology

The carbon material coating enhances sodium metal nucleation kinetics, allows safe storage without self-discharge, and maintains high energy density by preventing dendrite growth, even in short-circuit conditions.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 2026123080000001_ABST
    Figure 2026123080000001_ABST
Patent Text Reader

Abstract

The present invention provides a negative electrode piece for a sodium-ion battery, an electrochemical apparatus, and an electronic device. [Solution] A negative electrode piece for a sodium-ion battery, comprising a negative electrode current collector and a carbon material coating formed on at least a portion of the surface of the negative electrode current collector, wherein the thickness of the carbon material coating is 0.3 μm to 10 μm, the carbon material coating comprises a carbon material and a polymer adhesive, and the mass ratio of the carbon material in the carbon material coating is 90% to 99%.
Need to check novelty before this filing date? Find Prior Art

Description

[Technical Field]

[0001] Cross-reference of related applications This application claims priority to Chinese Patent Application No. 202110742798.7, filed on 26 June 2021, titled "Negative electrode piece for sodium-ion battery, electrochemical apparatus and electronic device," the entire contents of said application are incorporated herein by reference.

[0002] This application relates to the field of energy storage technology, and more specifically to negative electrode pieces for sodium-ion batteries, electrochemical devices, and electronic devices. [Background technology]

[0003] As energy and environmental problems become increasingly prominent, new energy industries are attracting more and more attention. In recent years, lithium-ion batteries have been widely applied as an important new energy storage device due to their characteristics such as high energy density and excellent cycle performance. However, due to the shortage of active material resources related to lithium-ion batteries, the cost of batteries remains high, and at the same time, there are serious problems such as the depletion of related resources, so there is a need to develop other low-cost metal-ion secondary battery systems.

[0004] Sodium-ion batteries have become a focus of research in recent years due to their advantages such as low cost, abundant resources, and manufacturing processes similar to those of lithium-ion batteries. However, current sodium-ion batteries are limited by the low gram capacity and voltage platform of the positive and negative electrode materials, resulting in a significant difference in energy density between sodium-ion and lithium-ion batteries, preventing true commercialization. Given the difficulty in breaking through the energy density of positive electrode materials, directly using sodium metal (theoretical relative capacity 1166 mAh / g) as the negative electrode has become an effective method to significantly improve the energy density of the battery. However, the low chemical stability of sodium metal in air, its low melting point (98°C), and its tendency to form dendrites during electrochemical cycles make the commercialization of sodium-ion batteries difficult. [Overview of the project] [Problems that the invention aims to solve]

[0005] In view of these factors, the present invention provides a negative electrode piece for a sodium-ion battery, an electrochemical apparatus, and an electronic device that can effectively suppress the generation of dendrites during the electrochemical cycle of sodium metal and improve the cycle performance of the battery. [Means for solving the problem]

[0006] According to a first aspect, the present application provides a negative electrode piece for a sodium-ion battery, the negative electrode piece comprising a negative electrode current collector and a carbon material coating formed on at least a portion of the surface of the negative electrode current collector, the thickness of the carbon material coating being 10 μm or less, and the carbon material coating comprising a carbon material and a polymer adhesive.

[0007] In some select embodiments, the negative electrode piece satisfies at least one of the following conditions:

[0008] (1) The carbon material includes at least one of the following: mesocarbon microbeads, graphite, natural graphite, expanded graphite, artificial graphite, glassy carbon, carbon-carbon composite material, carbon fiber, hard carbon, porous carbon, highly oriented graphite, three-dimensional graphite, carbon black, carbon nanotubes, and graphene.

[0009] (2) The mass ratio of the carbon material in the carbon material coating is 90% to 99%.

[0010] (3) The mass ratio of the carbon material in the carbon material coating is 94% to 97%.

[0011] (4) The thickness of the carbon material coating is 0.3 μm to 10 μm.

[0012] (5) The thickness of the carbon material coating is 1 μm to 7 μm.

[0013] In some select embodiments, the negative electrode piece satisfies at least one of the following conditions:

[0014] (6) The negative electrode current collector includes at least one of the following: metal foil material, metal foam current collector, metal mesh current collector, carbon felt current collector, carbon cloth current collector, carbon paper current collector, and composite current collector.

[0015] (7) The negative electrode current collector has a porous structure and includes at least one of porous aluminum foil, porous copper foil, and porous stainless steel foil.

[0016] In several select embodiments, the negative electrode piece further includes a sodium metal layer formed on at least a portion of the carbon material coating away from the negative electrode current collector.

[0017] In several select embodiments, the mass content of the sodium metal layer in the negative electrode piece is 0.1 to 1%.

[0018] In some selectable embodiments, the negative electrode tab satisfies at least one of the following conditions.

[0019] (8) The carbon material contains at least one oxygen-containing group selected from carboxyl groups, hydroxyl groups, and ether groups.

[0020] (9) The carbon material contains an oxygen-containing group, and the mass content of oxygen atoms in the carbon material ≥ 0.1%.

[0021] In some selectable embodiments, the polymer adhesive contains at least one of sodium cellulose, sodium carboxymethyl cellulose, hydroxypropyl cellulose, sodium hydroxymethyl cellulose, potassium hydroxymethyl cellulose, diacetyl cellulose, polyacrylic acid, sodium alginate, styrene-butadiene rubber, acrylonitrile-butadiene rubber, polypyrrole, polyaniline, epoxy resin, and guar gum.

[0022] According to a second aspect, the present application provides an electrochemical device including a positive electrode tab, the negative electrode tab described in the first aspect above, and an electrolytic solution.

[0023] In some selectable embodiments, the positive electrode tab includes a positive electrode current collector and a positive electrode active material layer formed on at least a part of the surface of the positive electrode current collector, and the positive electrode active material layer contains a positive electrode active material containing at least one of sodium transition metal oxides, polyanion compounds, and Prussian blue compounds.

[0024] According to a third aspect, the present application provides an electronic device including the electrochemical device described in the second aspect above.

Advantages of the Invention

[0025] Compared with the prior art, the present application has at least the following beneficial effects.

[0026] The anode electrode piece, electrochemical device, and electronic device for a sodium-ion battery provided in this application have no anode active material on the surface of the anode current collector of the anode electrode piece. By depositing metallic sodium on the surface of the anode current collector during the initial charge, the deposited metallic sodium can adhere to the carbon material coating on the surface of the anode current collector. The carbon material coating effectively lowers the overpotential caused by the deposition of sodium metal and suppresses the formation of sodium dendrites, thus contributing to improved battery cycle performance. During the discharge process, the metallic sodium is converted back into sodium ions and returns to the positive electrode, enabling cycle charging and discharging. Furthermore, the carbon material coating can improve the kinetic performance of sodium metal nucleation in the sodium-ion battery. Since metallic sodium is generated in the subsequent cycle process and the sodium-ion battery has no voltage before the initial charge, the sodium-ion battery can be stored for a long period of time without self-discharge, and even if the battery is short-circuited, no current is generated, making it extremely safe. [Brief explanation of the drawing]

[0027] To further illustrate the technical solutions according to the embodiments of the present application, the drawings necessary for use in the embodiments of the present application are briefly described below. Clearly, the drawings described below represent only a few embodiments of the present application, and those skilled in the art can obtain other drawings according to these drawings without requiring any creative effort.

[0028] [Figure 1] This is a schematic diagram of the configuration of the negative electrode piece of a sodium-ion battery provided by the embodiment of the present application. [Modes for carrying out the invention]

[0029] The following description is a preferred embodiment according to the embodiments of the present invention. It should be noted that those skilled in the art can make several improvements and modifications without departing from the principles of the embodiments of the present invention, and these improvements and modifications are also considered to be within the scope of protection of the embodiments of the present invention.

[0030] For the sake of brevity, this specification explicitly discloses only a few numerical ranges. However, any lower limit can be combined with any upper limit to form an unspecified range, and any lower limit can be combined with other lower limits to form an unspecified range, and similarly, any upper limit can be combined with any other upper limit to form an unspecified range. Also, although not explicitly stated, all points or single values ​​between the endpoints of a range are included within that range. Thus, all points or single values ​​can be combined with any other point or single value as their own lower or upper limit, or combined with other lower or upper limits to form an unspecified range.

[0031] In the descriptions herein, unless otherwise specified, "greater than or equal to" and "less than or equal to" include the number itself, and "multiple types" in "one or more types" means two or more.

[0032] In this specification, unless otherwise stated, the term "or" is inclusive. For example, the phrase "A or B" means "A, B, or both A and B." More specifically, any one of the following conditions satisfies the condition "A or B": A is true (or exists) and B is false (or does not exist), A is false (or does not exist) and B is true (exists), or A and B are both true (or exist).

[0033] It should be understood that relational terms such as "first," "second," etc., are used solely to distinguish one entity or operation from another, and do not necessarily require or imply any actual relationship or order between these entities or operations.

[0034] The above description of the invention in this application is not intended to describe each embodiment or implementation in the disclosure herein. The following description will more specifically illustrate exemplary embodiments by example. Guidance is provided through a series of examples at various points throughout the application, and these examples can be used in various combinations. In each example, the enumeration is representative of a group and should not be construed as exhaustive.

[0035] First aspect

[0036] This application provides a negative electrode piece for a sodium-ion battery. As shown in Figure 1, the negative electrode piece 1 includes a negative electrode current collector 11 and a carbon material coating 12 formed on at least a portion of the surface of the negative electrode current collector 11, wherein the thickness of the carbon material coating 12 is 10 μm or less, and the carbon material coating 12 includes a carbon material and a polymer adhesive.

[0037] In the above-described solution, the thickness of the carbon material coating on the surface of the negative electrode current collector is small, preventing the negative electrode active material from taking effect. Therefore, the negative electrode chip of this invention is a negative electrode chip without a negative electrode active material. By depositing metallic sodium on the surface of the negative electrode current collector during the initial charge, the deposited metallic sodium can adhere to the carbon material coating on the surface of the negative electrode current collector. The carbon material coating effectively reduces the overpotential caused by the deposition of sodium metal, suppressing the formation of sodium dendrites, which helps improve the battery's cycle performance. During the discharge process, the metallic sodium is converted into sodium ions and returns to the positive electrode, enabling cycle charging and discharging.

[0038] Carbon material coating can improve the kinetic performance of sodium metal nucleation in sodium-ion batteries. Since metallic sodium is generated in a subsequent cycle process, and the sodium-ion battery has no voltage before the first charge, it can be stored for a long period of time without self-discharge, and even if the battery is short-circuited, no current is generated, making it extremely safe. Since there is no negative electrode active material on the surface of the negative electrode current collector and only the negative electrode current collector is used, the battery can achieve a higher energy density than a negative electrode made of metallic sodium.

[0039] As a selectable technical solution of the present invention, the negative electrode current collector 11 includes at least one of the following: metal foil material, metal foam current collector, metal mesh current collector, carbon felt current collector, carbon cloth current collector, carbon paper current collector, and composite current collector. Selectively, the metal foil material may be copper foil, aluminum foil, stainless steel foil, iron foil, zinc foil, titanium foil, etc., the metal foam current collector may be copper foam, aluminum foam, zinc foam, etc., and the metal mesh current collector may be copper mesh, aluminum mesh, etc. The negative electrode current collector 11 may be, but is not limited to, a composite current collector formed by a composite of metal foil material and metal foam, or a composite current collector formed by a composite of metal foil material and metal mesh, or a composite current collector formed by a composite of metal foil material and polymer substrate film.

[0040] Since sodium ions do not form alloys with aluminum, the use of an aluminum-based current collector is preferred from the standpoint of cost reduction and weight reduction, and the aluminum-based current collector comprises one of aluminum foil, aluminum alloy foil, and an aluminum-based composite current collector, the aluminum-based composite current collector comprises a polymer base film and aluminum foil and / or aluminum alloy foil formed on both sides of the polymer base film, and optionally the aluminum-based composite current collector has a "sandwich" structure, the polymer base film is located in the center with aluminum foil on both sides, or aluminum alloy foil on both sides, or aluminum foil may be provided on one side of the polymer base film and aluminum alloy foil on the other side, the polymer base film is one of polyamide, polyterephthalate, polyimide, polyethylene, polypropylene, polystyrene, polyvinyl chloride, acrylonitrile-butadiene-styrene copolymer, polybutylene terephthalate, poly-p-phenylene terephthalate, polypropylene, polyoxymethylene, epoxy resin, phenolic resin, polytetrafluoroethylene, polyvinylidene fluoride, silicone rubber, and polycarbonate. Optionally, the present invention selects an aluminum-based composite current collector having better ductility, which is beneficial for maintaining electrode integrity during the sodium deposition / exfoliation process.

[0041] The thickness of the negative electrode current collector 11 is selectable, ranging from 3 μm to 15 μm, specifically 3 μm, 4 μm, 5 μm, 6 μm, 8 μm, 10 μm, 12 μm, or 15 μm, but may be other values ​​within the above range and is not limited thereto. If the negative electrode current collector is too thick, it will cause a decrease in the energy density of the battery, and if the negative electrode current collector is too thin, it will cause a decrease in the processing performance of the battery.

[0042] As an optional technical solution of the present invention, the negative electrode current collector 11 has a porous structure, and the negative electrode current collector includes at least one of porous aluminum foil, porous copper foil, and porous stainless steel foil. By having a porous structure, the specific surface area of ​​the negative electrode current collector can be increased, which can mitigate changes in the volume of the negative electrode piece and suppress the formation of dendrites.

[0043] As a selectable technical solution of this invention, the thickness of the carbon material coating 12 is 0.3 μm to 10 μm, specifically 0.3 μm, 0.5 μm, 1.0 μm, 1.4 μm, 1.8 μm, 2.2 μm, 3.5 μm, 4.0 μm, 4.5 μm, 4.9 μm, 5.5 μm, 6.0 μm, 7.0 μm, 8.0 μm, 9.2 μm, or 10 μm, but may be other values ​​within the above range and is not limited thereto. If the carbon material coating on the surface of the negative electrode current collector 11 is too thick, the energy density of the battery will decrease and the effect of having no negative electrode will not be achieved. If the carbon material coating on the surface of the negative electrode current collector 11 is too thin, there will be too few sodium metal nucleation sites and the sodium intercalation overpotential will not be effectively improved, sodium dendrites will grow toward the separator more easily and the battery cycle performance will decrease. The thickness of the carbon material coating can be selected from 1 μm to 7 μm, and further selected from 3 μm to 5 μm.

[0044] As a selectable technical solution of the present invention, the carbon material coating 12 comprises a carbon material and a polymer adhesive. Here, the carbon material includes at least one of mesocarbon microbeads, graphite, natural graphite, expanded graphite, artificial graphite, glassy carbon, carbon-carbon composite materials, carbon fibers, hard carbon, porous carbon, highly oriented graphite, three-dimensional graphite, carbon black, carbon nanotubes, and graphene. It should be understood that by forming a carbon material coating on the surface of the negative electrode current collector, the conductivity for which sodium ions diffuse can be improved, the sodium intercalation overpotential can be lowered, and the formation and growth of sodium dendrites can be suppressed.

[0045] Selectively, the carbon material includes at least two of the following: mesocarbon microbeads, graphite, natural graphite, expanded graphite, artificial graphite, glassy carbon, carbon-carbon composites, carbon fibers, hard carbon, porous carbon, highly oriented graphite, three-dimensional graphite, carbon black, carbon nanotubes, and graphene. In one embodiment, the carbon material can be a mixture of carbon black, graphene, and carbon nanotubes in a mass ratio of 1:1:1. As can be understood, compared to the use of a single carbon material, the use of a mixture of two or more carbon materials can expand the conductive dimension of the carbon material and improve the conductivity of the carbon material.

[0046] As a selectable technical solution of the present invention, the mass ratio of the carbon material in the carbon material coating 12 is 90-99%, specifically 90%, 90.5%, 91%, 91.3%, 92.8%, 94%, 94.8%, 95%, 95.6%, 96.2%, 96.5%, 97%, 98%, or 99%, but may be other values ​​within the above range and is not limited thereto. If the mass ratio of the carbon material in the coating is too high, i.e., if the mass ratio of the polymer adhesive is too low, the adhesion of the carbon material coating will decrease, and problems such as peeling and rupture of the coating are likely to occur during the processing process. If the mass ratio of the carbon material in the carbon material coating is too low, the conductivity of the carbon material coating will decrease, the sodium intercalation overpotential cannot be effectively improved, sodium dendrites are likely to form, and the cycle performance of the battery will decrease. Selectively, the mass ratio of the carbon material in the carbon material coating 12 is 94-97%.

[0047] As a selectable technical solution of the present invention, the carbon material contains an oxygen-containing group which is at least one selected from a carboxyl group, a hydroxyl group, and an ether group. After the sodium-ion battery is first charged, the sodium metal is deposited on one side of the carbon material coating away from the negative electrode current collector. The carbon material contains an oxygen-containing group which has good sodium affinity and readily binds preferentially with sodium ions to form a uniform sodium metal nucleus, thereby lowering the overpotential of the subsequent sodium intercalation reaction, improving the uniformity of the sodium metal deposition, suppressing the formation and growth of sodium dendrites, and improving the cycling performance of the sodium metal negative electrode.

[0048] As a selectable technical solution of this application, the mass content of oxygen atoms in the carbon material is ≥ 0.1%, and the mass content of oxygen atoms may specifically be 0.1%, 0.2%, 0.3%, 0.4%, 0.5%, 0.6%, 0.7%, 0.8%, 0.9%, or 1%, but may be other values ​​within the above range and is not limited thereto. If the oxygen atom content in the carbon material is too low, it will not help in the formation of a uniform sodium metal nucleus by sodium ions and will not help in improving the uniformity of sodium metal deposition.

[0049] Furthermore, as shown in Figure 1, the negative electrode piece 1 further includes a sodium metal layer 13 formed on at least a portion of the surface of the carbon material coating 12 that is separated from the negative electrode current collector 11. Due to the low sodium metal barrier, it is possible to lower the sodium intercalation overpotential of the carbon material coating 12 and the overpotential of the entire negative electrode piece. The sodium metal layer 13 can completely cover the surface of the carbon material coating 12 or it can partially cover the surface of the carbon material coating 12.

[0050] As a selectable technical solution of the present invention, the mass content of the sodium metal layer 13 in the negative electrode piece 1 is 0.1 to 1%, specifically 0.1%, 0.2%, 0.3%, 0.4%, 0.5%, 0.6%, 0.7%, 0.8%, or 1%, but may be other values ​​within the above range and is not limited thereto. If the mass content of the sodium metal layer in the negative electrode piece is too high, the excess sodium metal becomes more reactive with air and water, making processing difficult and causing dendrite growth. If the mass content of the sodium metal layer in the negative electrode piece is too low, there is less sodium metal to bond with the carbon material, making it impossible to effectively use the sodium metal to lower the sodium intercalation overpotential and lower the overall overpotential of the negative electrode piece.

[0051] As a selectable technical solution of the present invention, the polymer adhesive in the carbon material coating 12 comprises at least one of the following: sodium cellulose, sodium carboxymethylcellulose, hydroxypropylcellulose, sodium hydroxymethylcellulose, potassium hydroxymethylcellulose, diacetylcellulose, polyacrylic acid, sodium alginate, styrene-butadiene rubber, acrylic-butadiene rubber, polypyrrole, polyaniline, epoxy resin, and Guardo gum. The polymer adhesive has high viscosity and mechanical strength, which ensures the integrity of the contact surface between the carbon material coating and the negative electrode current collector, suppresses dendritic growth, and improves cycle performance.

[0052] As a selectable technical solution of the present invention, the method for manufacturing the negative electrode piece includes the following steps.

[0053] The carbon material is placed in a mixed solution of concentrated sulfuric acid and concentrated nitric acid in a volume ratio of 3:1, and the reaction time is controlled by stirring for 1 to 6 hours, thereby controlling the oxygen content.

[0054] The carbon material after the reaction is washed with deionized water, filtered, placed in a drying box, and dried at 80°C.

[0055] The dried carbon material and polymer adhesive are added to a solvent and stirred until a uniform paste is formed. The paste is then applied to a negative electrode current collector (specifically, it may be copper-aluminum foil) and dried to obtain an electrode piece. The solvent may be at least one selected from water, acetone, N-methylpyrrolidone, dimethylformamide, and ethanol.

[0056] The electrode pieces are placed in a physical vapor deposition apparatus, and a uniform sodium metal layer is completed on the surface of the electrode pieces by ion sputtering to obtain a negative electrode piece.

[0057] Second aspect

[0058] This application provides an electrochemical apparatus comprising a positive electrode piece, a negative electrode piece according to the first embodiment described above, and an electrolyte. For example, the electrochemical apparatus according to this application is a sodium-ion battery.

[0059] The positive electrode piece includes a positive electrode current collector and a positive electrode active material layer formed on at least a portion of the surface of the positive electrode current collector, wherein the positive electrode active material layer may include at least one of sodium transition metal oxides, polyanionic compounds, and Prussian blue compounds. However, the present invention is not limited to these materials, and other conventionally known materials available as positive electrode active materials for sodium-ion batteries may be used.

[0060] As a selectable technical solution of the present invention, in a sodium transition metal oxide, the transition metal may be at least one of Mn, Fe, Ni, Co, Cr, Cu, Ti, Zn, V, Zr, and Ce. The sodium transition metal oxide is, for example, Na x MO2, where M is one or more of Ti, V, Mn, Co, Ni, Fe, Cr, and Cu, 0 <x≦1である。

[0061] As a selectable technical solution of this application, the polyanionic compound is a sodium ion, a transition metal ion, and a tetrahedral (YO4) ion. n-It may be a compound having an anion unit. The transition metal may be at least one of Mn, Fe, Ni, Co, Cr, Cu, Ti, Zn, V, Zr, and Ce. Y may be at least one of P, S, and Si. n is (YO4) n- represents the valence of

[0062] The polyanion compound may also be a compound such as sodium ions, transition metal ions, tetrahedral (YO4) n- anion units, and halogen anions. The transition metal may be at least one of Mn, Fe, Ni, Co, Cr, Cu, Ti, Zn, V, Zr, and Ce. Y may be at least one of P, S, and Si. n is (YO4) n- represents the valence of, and the halogen may be at least one of F, Cl, and Br.

[0063] The polyanion compound may also be a compound having sodium ions, tetrahedral (YO4) n- anion units, polyhedral units (ZO y ) m+ and optional halogen anions. Y may be at least one of P, S, and Si. n is the valence of (YO4) n- , Z represents a transition metal, which may be at least one of Mn, Fe, Ni, Co, Cr, Cu, Ti, Zn, V, Zr, and Ce. m is the valence of (ZO y ) m+ , and the halogen may be at least one of F, Cl, and Br.

[0064] The polyanion compound is, for example, at least one of NaFePO4, Na3V2(PO4)3, NaM’PO4F (M’ is one or more of V, Fe, Mn, and Ni), and Na3(VO y )2(PO4)2F 3-2y (0 ≦ y ≦ 1).

[0065] The Prussian blue compound may be a compound having sodium ions, transition metal ions, and cyanide ions (CN-). The transition metal may be at least one of Mn, Fe, Ni, Co, Cr, Cu, Ti, Zn, V, Zr, and Ce. For example, the Prussian blue compound may be Na a Me b Me' c (CN)6 may also be, where Me and Me' are each independently at least one of Ni, Cu, Fe, Mn, Co and Zn, 0 <a≦2、0<b<1、0<c<1である。

[0066] As an optional technical solution of the present invention, the positive electrode active material layer may further contain a conductive agent to improve the conductive performance of the positive electrode. The present invention does not specifically limit the type of conductive agent, and it can be selected according to practical requirements. For example, the conductive agent may be one or more of the following: superconducting carbon, acetylene black, carbon black, Ketjen black, carbon dots, carbon nanotubes, graphite, graphene, and carbon nanofibers.

[0067] As an optional technical solution of the present invention, the positive electrode active material layer may further contain an adhesive to ensure that the positive electrode active material and the selectable conductive agent are securely bonded to the positive electrode current collector. The present invention does not specifically limit the type of adhesive, and it can be selected according to actual requirements. As an example, the adhesive may be at least one of polyvinylidene fluoride (PVDF), polytetrafluoroethylene (PTFE), polyacrylic acid (PAA), polyvinyl alcohol (PVA), ethylene-vinyl acetate copolymer (EVA), styrene-butadiene rubber (SBR), carboxymethylcellulose (CMC), sodium alginate (SA), polymethacrylic acid (PMA), and carboxymethyl chitosan (CMCS).

[0068] As selectable technical solutions of this invention, the positive electrode current collector may be a conductive carbon sheet, a metal foil, a carbon-coated metal foil, a porous metal plate, or a composite current collector, of which the conductive carbon material of the conductive carbon sheet may be one or more of superconducting carbon, acetylene black, carbon black, Ketjen black, carbon dots, carbon nanotubes, graphite, graphene, and carbon nanofibers, and the metal material of the metal foil, carbon-coated metal foil, and porous metal plate may each be at least one independently selected from copper, aluminum, nickel, and stainless steel. The composite current collector may be a composite current collector formed by combining a metal foil and a polymer substrate film.

[0069] The positive electrode current collector is one or more of the following: copper foil, aluminum foil, nickel foil, stainless steel foil, stainless steel mesh, and carbon-coated aluminum foil, with the use of aluminum foil being preferred.

[0070] The above-mentioned positive electrode pieces can be manufactured according to conventional methods in the field. Generally, a positive electrode active material and a selectable conductive agent and adhesive are dispersed in a solvent (e.g., N-methylpyrrolidone, abbreviated as NMP) to form a uniform positive electrode paste, the positive electrode paste is applied to a positive electrode current collector, and a positive electrode piece is obtained after drying and cooling rolling.

[0071] The separator in the sodium-ion battery of this application may be made of various separator materials used in electrochemical energy storage devices in the art. For example, it may include, but is not limited to, at least one of polyethylene, polypropylene, polyvinylidene fluoride, aramid, polyethylene terephthalate, polytetrafluoroethylene, polyacrylonitrile, polyimide, polyamide, polyester, and natural fibers.

[0072] The electrolyte solution described above may contain an organic solvent and an electrolyte sodium salt. For example, the organic solvent may be one or more of the following: ethylene carbonate, propylene carbonate, diethyl carbonate, dimethyl carbonate, ethylmethyl carbonate, propylene carbonate, methyl acetate, ethyl propionate, fluoroethylene carbonate, ether, diethylene glycol dimethyl ether, triethylene glycol dimethyl ether, tetraethylene glycol dimethyl ether, and methyl tert-butyl ether. The electrolyte sodium salt may be one or more of the following: sodium hexafluorophosphate, sodium bisfluorosulfonimide, sodium bistrifluoromethanesulfonimide, sodium trifluoromethanesulfonate, sodium tetrafluoroborate, sodium difluorophosphate, sodium perchlorate, and sodium chloride.

[0073] The positive electrode piece, separator, and negative electrode piece are stacked in order, with the separator placed between the positive and negative electrode pieces to act as a separator, to obtain a battery core. Alternatively, the battery core may be obtained after winding, and the battery core may be placed in a packaging shell (which may be a soft package, a square aluminum shell, a square steel shell, a cylindrical aluminum shell, or a cylindrical steel shell), an electrolyte is injected and sealed to obtain a sodium-ion battery.

[0074] Third aspect

[0075] The present invention further provides an electronic device including the electrochemical apparatus described in the second embodiment above. The electrochemical apparatus can be used as a power source for the electronic device to provide power to the electronic device. Examples of electronic devices include, but are not limited to, vehicles, mobile phones, portable devices, laptop computers, ships, spacecraft, electric toys, and power tools.

[0076] Examples

[0077] The following examples are provided to illustrate the contents of the Application in more detail, and are used for illustrative purposes only, as various modifications and changes within the scope of the Application will be apparent to those skilled in the art. Unless otherwise stated, all parts, percentages and ratios reported in the following examples are by weight, and all reagents used in the examples are either commercially available or synthesized according to conventional methods and can be used directly without further processing, and all equipment used in the examples is commercially available.

[0078] 1) Manufacturing of positive electrode pieces

[0079] A cathode paste was prepared by thoroughly dissolving 10 wt% polyvinylidene fluoride adhesive in N-methylpyrrolidone, adding 10 wt% carbon black conductive agent and 80 wt% Na4Fe3(PO4)2(P2O7) cathode active material, and dispersing them uniformly. The cathode paste was uniformly applied to the surface of aluminum foil, and then transferred to a vacuum drying chamber for thorough drying. The resulting electrode pieces were roll-rolled and then punched out to obtain the desired wafers.

[0080] 2) Manufacturing of negative electrode pieces

[0081] Carbon material and sodium alginate were added to water and stirred until a uniform paste was formed. The paste was then applied to a negative electrode current collector, dried, and cut to obtain a negative electrode piece without a negative electrode structure.

[0082] The negative electrode piece was placed in a physical vapor deposition apparatus, and a sodium metal layer was formed on the surface of the negative electrode piece by ion sputtering to obtain the negative electrode piece.

[0083] 3) A porous polyethylene (PE) polymer thin film was used as the separator.

[0084] 4) Manufacturing of electrolyte

[0085] Ethylene glycol dimethyl ether (DME) was used as the organic solvent, and then a well-dried sodium salt, NaPF6, was dissolved in the mixed organic solvent to prepare an electrolyte solution with a concentration of 1 mol / L.

[0086] 5) Manufacturing of button batteries

[0087] The positive electrode piece, separator, and negative electrode piece were stacked in order, with the separator placed between the positive and negative electrode pieces to act as a separator, and the above electrolyte was added to assemble the button battery.

[0088] Examples 1 to 24 and Comparative Examples 1 to 10, which manufacture negative electrode pieces according to the above manufacturing method, have specific parameters as shown in Table 1. [Table 1] TIFF2026123080000003.tif223158

[0089] Performance test:

[0090] Performance parameter testing of negative electrode piece

[0091] 1) Thickness of carbon material coating:

[0092] The cross-sections of the electrode pieces, which were rapidly cooled and cut with liquid nitrogen, were photographed using a scanning electron microscope (SEM), and the thickness of the carbon material coating was measured using secondary electron imaging.

[0093] 2) Battery performance test

[0094] At 25°C, the batteries produced in the examples were charged to 50 μA at a multiplier of 0.1 C, and the most negative potential obtained during the process was recorded as an overpotential.

[0095] At 25°C, the batteries produced in the examples and comparative examples were charged to 4V at a multiplier of 0.1C and discharged to 1V at a multiplier of 0.1C. Full charge and full discharge cycle tests were performed until the sodium-ion battery capacity fell to less than 80% of its initial capacity. The discharge ratio capacity and number of cycles for the first cycle were recorded, and the specific data are shown in Table 2. [Table 2] TIFF2026123080000005.tif223158

[0096] As can be seen from the test results of Examples 1-6 and Comparative Examples 1 and 2, when the thickness of the carbon material coating on the surface of the negative electrode current collector is in the range of 0.3 μm to 10 μm, the discharge ratio capacity in the first cycle of the battery is high, the battery has a high energy density, the carbon material coating can improve sodium intercalation overpotential, suppress the formation of sodium dendrites, and improve the battery's cycle performance. As can be seen from the test results of Comparative Example 1, if the thickness of the carbon material coating is too thick, the energy density of the battery decreases, and the sodium-ion battery without a negative electrode structure cannot achieve the effect of improving the battery's energy density. As can be seen from the test results of Comparative Example 2, if the thickness of the carbon material coating is too thin, there are too few sodium metal nucleation sites, making it difficult to improve sodium intercalation overpotential, sodium dendrites tend to grow toward the separator, and the battery's cycle performance deteriorates. Preferably, the thickness of the carbon material coating is 1 μm to 7 μm.

[0097] As can be seen from the test results of Examples 7-11 and Comparative Examples 3 and 4, when the mass ratio of carbon material in the carbon material coating is 90%-99%, sodium intercalation overpotential can be effectively improved and the growth of sodium dendrites can be suppressed, and the battery cycle performance can meet the needs of use. As can be seen from the test results of Comparative Example 3, if the mass ratio of carbon material in the carbon material coating is too low, the conductivity of the carbon material coating decreases, which reduces the discharge ratio capacity in the first cycle of the battery, the improvement of sodium intercalation overpotential is not clear, and the battery cycle performance deteriorates. As can be seen from the test results of Comparative Example 4, if the mass ratio of carbon material in the carbon material coating is too high, the adhesion of the carbon material coating decreases, problems such as peeling and rupture of the coating are likely to occur during the processing process, and the battery cycle performance deteriorates. Preferably, the mass ratio of carbon material in the carbon material coating is 94%-97%.

[0098] As can be seen from the test results of Examples 3 and 12-14, compared to using a single carbon material, using a mixture of two or more carbon materials expands the conductivity dimension of the carbon material, improves the conductivity of the carbon material, and improves the discharge ratio capacity of the battery in its first cycle.

[0099] As can be seen from the test results of Examples 3 and 15-17, and Comparative Examples 5 and 6, when a carbon material contains oxygen-containing groups with good sodium affinity, it preferentially binds to sodium ions and easily forms a uniform sodium metal nucleus. This lowers the overpotential of the subsequent sodium intercalation reaction, improves the uniformity of sodium metal deposition, suppresses the formation and growth of sodium dendrites, and improves the cycling performance of the sodium metal anode. In Comparative Example 6, the oxygen content of the carbon material was too low, resulting in little improvement in sodium metal nucleation. The sodium intercalation reaction overpotential was lower compared to Comparative Example 5 (carbon material did not contain oxygen), but not as significantly lower as in Examples 3 and 15-17.

[0100] As can be seen from the test results of Examples 3 and 18, the negative electrode current collector of Example 18 has a porous structure, which can increase the specific surface area of ​​the negative electrode current collector. This increase can mitigate changes in the volume of the negative electrode piece, suppress the formation of dendrites, and improve the battery's cycle performance.

[0101] As can be seen from the test results of Examples 19-24 and Comparative Examples 7 and 9, when the mass content of the sodium metal layer in the negative electrode piece is within the range of 0.1-1%, the sodium intercalation overpotential can be effectively reduced. In Comparative Example 7, no sodium metal layer was formed on the surface of the carbon material coating, and the overpotential of the carbon material coating was relatively increased, which did not help to improve the electrochemical performance of the battery. In Comparative Example 8, the mass content of the sodium metal layer in the negative electrode piece was too low, resulting in insufficient sodium metal to bond with the carbon material, making it impossible to effectively use the sodium metal to reduce the sodium intercalation overpotential and reduce the overall overpotential of the negative electrode piece. In Comparative Example 9, the mass content of the sodium metal layer in the negative electrode piece was too high, and the excess sodium metal became more reactive with air and water, making processing difficult, causing dendrite growth, and reducing the battery's cycle performance.

[0102] As can be seen from the test results of Examples 1 to 24 and Comparative Example 10, Comparative Example 10, in which only the negative electrode current collector was used as the negative electrode and no carbon material coating was formed to reduce the overpotential of sodium intercalation, had the highest battery overpotential and the lowest cycle performance. From the above, it can be seen that by forming a carbon material coating on the surface of the negative electrode current collector, the overpotential of the battery can be effectively reduced and the cycle performance of the battery can be improved.

[0103] Although the present application is disclosed above by preferred embodiments, this does not limit the scope of the claims, and a person skilled in the art can make several possible changes and modifications without departing from the spirit of the present application; therefore, the scope of protection of the present application shall be limited to the scope defined by the claims of the present application.

Claims

1. A negative electrode piece for a sodium-ion battery, The negative electrode current collector and a carbon material coating formed on at least a portion of the surface of the negative electrode current collector are included. The thickness of the carbon material coating is 0.3 μm to 10 μm. The carbon material coating comprises a carbon material and a polymer adhesive. The carbon material coating is characterized in that the mass ratio of the carbon material is 90% to 99%. Negative pole piece.

2. (1) The carbon material includes at least one of the following: mesocarbon microbeads, graphite, natural graphite, expanded graphite, artificial graphite, glassy carbon, carbon-carbon composite material, carbon fiber, hard carbon, porous carbon, highly oriented graphite, three-dimensional graphite, carbon black, carbon nanotubes, and graphene. (2) The mass ratio of the carbon material in the carbon material coating is 94% to 97%, (3) The thickness of the carbon material coating is 1 μm to 7 μm. It is characterized by satisfying at least one of the following conditions, The negative electrode piece according to claim 1.

3. (4) The negative electrode current collector includes at least one of the following: metal foil material, metal foam current collector, metal mesh current collector, carbon felt current collector, carbon cloth current collector, carbon paper current collector, and composite current collector. (5) The negative electrode current collector has a porous structure, and the negative electrode current collector includes at least one of porous aluminum foil, porous copper foil, and porous stainless steel foil. It is characterized by satisfying at least one of the following conditions, The negative electrode piece according to claim 1.

4. The negative electrode piece further comprises a sodium metal layer formed on at least a portion of the carbon material coating that is separated from the negative electrode current collector, The negative electrode piece according to claim 1.

5. The mass content of the sodium metal layer in the negative electrode piece is 0.1 to 1%, characterized in that The negative electrode piece according to claim 4.

6. (6) The carbon material contains an oxygen-containing group which is at least one selected from a carboxyl group, a hydroxyl group and an ether group. (7) The carbon material contains oxygen-containing groups, and the mass content of oxygen atoms in the carbon material is ≥ 0.1%. It is characterized by satisfying at least one of the following conditions: The negative electrode piece according to claim 1.

7. The polymer adhesive is characterized by containing at least one of the following: sodium cellulose, sodium carboxymethylcellulose, hydroxypropylcellulose, sodium hydroxymethylcellulose, potassium hydroxymethylcellulose, diacetylcellulose, polyacrylic acid, sodium alginate, styrene-butadiene rubber, acrylic-butadiene rubber, polypyrrole, polyaniline, epoxy resin, and guald gum. The negative electrode piece according to claim 1.

8. A positive electrode piece, a negative electrode piece as described in claim 1, and an electrolyte are included. Electrochemical apparatus.

9. The positive electrode piece comprises a positive electrode current collector and a positive electrode active material layer formed on at least a portion of the surface of the positive electrode current collector, wherein the positive electrode active material layer comprises a positive electrode active material comprising at least one of sodium transition metal oxide, polyanionic compound, and Prussian blue compound. The electrochemical apparatus according to claim 8.

10. The electrochemical apparatus is characterized by comprising the electrochemical apparatus described in claim 8 or 9, Electronic devices.