A negative electrode sheet and its preparation method, a battery, a battery pack, and electronic equipment.

By designing the relationship between the OI value and electrolyte wetting rate of the dispersed and oriented regions in the negative electrode, and by using rotating magnetic field induction technology to optimize the arrangement of graphite particles, the problem of insufficient lithium-ion diffusion was solved, and the reaction kinetics and cycle performance of the battery were improved.

CN120453288BActive Publication Date: 2026-05-05BYD CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
BYD CO LTD
Filing Date
2024-07-12
Publication Date
2026-05-05

AI Technical Summary

Technical Problem

The random arrangement of graphite particles in existing negative electrode sheets leads to insufficient lithium-ion diffusion capacity, affecting the reaction kinetics and cycle performance of the battery.

Method used

By limiting the relationship between the OI value of the dispersion region and the orientation region and the electrolyte wetting rate, and combining the rotating magnetic field induction technology, the arrangement of graphite particles is controlled to form a concentric circle stripe structure, thereby optimizing the longitudinal and lateral diffusion capabilities of lithium ions.

Benefits of technology

It improves lithium-ion reaction kinetics, enhances battery cycle performance and electrical performance, and reduces battery internal resistance and diffusion impedance.

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Abstract

This invention provides a negative electrode sheet and its preparation method, a battery, a battery pack, and an electronic device. The negative electrode sheet includes a negative electrode active material layer; the surface of the negative electrode active material layer includes N concentric circular stripes, the region between the Nth and (N-1)th concentric circular stripes is a dispersion region, and the region surrounded by the dispersion region is an orientation region. The negative electrode sheet satisfies the following relationship: 0.8 <V C / V Q <1, 1.6≤Q OI ≤9, 0.5≤C OI <1.6; where V C Electrolyte wetting rate of the orientation region, unit: mm / 100s, V Q Q represents the electrolyte wetting rate in the dispersed region, expressed in mm / 100s. OI C represents the OI value of the diffusion region. OI The OI value is the region enclosed by the first concentric circular stripe in the orientation region. The negative electrode provided by this invention can simultaneously improve the longitudinal and lateral liquid phase diffusion capabilities of lithium ions, thereby facilitating the control of lithium-ion reaction kinetics and the balance between long-term cycling.
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Description

Technical Field

[0001] This invention relates to the field of battery technology, and in particular to a negative electrode sheet and its preparation method, a battery, a battery pack, and electronic equipment. Background Technology

[0002] The arrangement of graphite particles and their crystal structure in the negative electrode has a significant impact on the lithium-ion diffusion and electron transport capabilities of the electrode. However, the graphite particles in a typical negative electrode are randomly arranged, which is not conducive to the diffusion of lithium ions and the transport of electrons.

[0003] By magnetically inducing and controlling the arrangement of graphite particles in the negative electrode, the lithium-ion liquid phase diffusion capability in the thickness direction (longitudinal liquid phase diffusion capability) of the electrode can be improved to a certain extent, which is beneficial to the improvement of lithium-ion reaction kinetics. However, at the same time, it will also deteriorate the lithium-ion liquid phase diffusion capability in the length direction (lateral liquid phase diffusion capability) of the negative electrode, which is not conducive to the long cycle life of the battery. Summary of the Invention

[0004] This invention provides a negative electrode sheet that, by defining the dispersion region, the orientation region, and the relationship between their OI values ​​and their electrolyte wetting rates, can simultaneously improve the longitudinal and lateral liquid phase diffusion capabilities of lithium ions passing through the negative electrode sheet. This is beneficial for controlling the lithium ion reaction kinetics of the negative electrode sheet and the balance between long-term cycling.

[0005] The present invention also provides a method for preparing a negative electrode sheet, which can prepare the above-mentioned negative electrode sheet and is simple.

[0006] The present invention also provides a battery including the above-mentioned negative electrode sheet. Compared with conventional magnetically induced batteries, the battery of the present invention has relatively low 50% SOC DC internal resistance and liquid phase diffusion impedance, while having better cycle performance.

[0007] The present invention also provides a battery pack, which has better electrical performance and longer cycle life because it includes the above-mentioned battery.

[0008] The present invention also provides an electronic device, which, because it includes the aforementioned battery, has superior electrical performance and a relatively long service life.

[0009] In detail, in a first aspect, the present invention provides a negative electrode sheet, comprising a current collector and a negative electrode active material layer disposed on at least one functional surface of the current collector; the negative electrode active material layer comprises graphite, and the surface of the negative electrode active material layer comprises N concentric circular stripes, the region between the Nth concentric circular stripe and the (N-1)th concentric circular stripe is a dispersion region, and the region surrounded by the dispersion region is an orientation region, wherein the negative electrode sheet satisfies the following formulas 1 to 3:

[0010] 0.8 <V C / V Q <1 Equation 1;

[0011] 1.6≤Q OI ≤9 Equation 2;

[0012] 0.5≤C OI <1.6 Equation 3;

[0013] Among them, V C Electrolyte wetting rate of the orientation region, unit: mm / 100s, V Q Q represents the electrolyte wetting rate in the dispersed region, expressed in mm / 100s. OI C represents the OI value of the diffusion region. OI The OI value is the region enclosed by the first concentric circular stripe in the orientation region.

[0014] Furthermore, N≥5.

[0015] Furthermore, 5.9mm / 100s≤V Q ≤6.7mm / 100s; 5.2mm / 100s≤V C ≤6.39mm / 100s.

[0016] Furthermore, the negative electrode also satisfies the following equation 4:

[0017] 0.6≤R C / R Q <1 Equation 4;

[0018] Among them, R Q R is the straight-line distance from the center of the Nth concentric circular stripe. C It is the straight-line distance from the center of the (N-1)th concentric circular stripe.

[0019] Furthermore, 0.65≤R C / R Q ≤0.75.

[0020] Furthermore, in the negative electrode active material layer, the mass percentage of graphite is 70% to 99%.

[0021] Secondly, the present invention provides a method for preparing the above-mentioned negative electrode sheet, comprising the following steps:

[0022] An electrode slurry comprising an active material, a binder, and a conductive agent is coated onto at least one surface of a current collector. The current collector coated with the electrode slurry is then induced by a rotating magnetic field and dried to obtain the negative electrode sheet. The rotating magnetic field includes a magnet. The perpendicular distance between the current collector coated with the electrode slurry and the magnet is m, and the rotational speed of the rotating magnetic field is n, where 0 mm... <m≤5mm;0r / min<n≤400r / min。

[0023] Furthermore, 0.5mm≤m≤2mm, 75r / min <n≤250r / min。

[0024] Thirdly, the present invention provides a battery comprising the negative electrode sheet described in the first aspect.

[0025] Fourthly, the present invention provides a battery pack comprising the battery described in the third aspect.

[0026] Fifthly, the present invention provides an electronic device comprising the battery described in the third aspect or the battery pack described in the fourth aspect.

[0027] The negative electrode provided by this invention, by defining the dispersion region, the orientation region, and the relationship between their OI values ​​and electrolyte wetting rates, can simultaneously improve the longitudinal and lateral liquid phase diffusion capabilities of lithium ions through the negative electrode, thereby facilitating the regulation of lithium ion reaction kinetics and the balance between long-term cycling. Attached Figure Description

[0028] To more clearly illustrate the technical solutions in the embodiments of the present invention or related technologies, the accompanying drawings used in the description of the embodiments of the present invention or related technologies are briefly introduced below. Obviously, the drawings described below are merely some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0029] Figure 1 This is a schematic diagram of the concentric circular stripe region of the negative electrode sheet according to a specific embodiment of the present invention.

[0030] Figure 2 This is a physical image of the concentric stripe area of ​​the negative electrode sheet according to a specific embodiment of the present invention. Detailed Implementation

[0031] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0032] Conventional ellipsoidal graphite with a particle size D50 of 8-15 μm and a compaction density of 1.6 g / cm³. 3 The graphite anode exhibits a high electrolyte wetting rate, indicating rapid lateral electrolyte transport, but lacks longitudinal electrolyte wetting and lithium-ion diffusion. Magnetic induction to regulate the vertical alignment of graphite particles can typically improve the longitudinal electrolyte wetting ability of the graphite anode. However, existing magnetic induction methods cannot simultaneously address both the lateral and longitudinal electrolyte wetting capabilities of the graphite anode. To solve these problems, this invention adopts the following technical solution:

[0033] In a first aspect, the present invention provides a negative electrode sheet, comprising a current collector and a negative electrode active material layer disposed on at least one functional surface of the current collector; the negative electrode active material layer comprises graphite; the surface of the negative electrode active material layer comprises N concentric circular stripes, the region between the Nth concentric circular stripe and the (N-1)th concentric circular stripe is a dispersion region, and the region surrounded by the dispersion region is an orientation region (see...). Figure 1 The negative electrode sheet satisfies the following equations 1 to 3:

[0034] 0.8 <V C / V Q <1 Equation 1;

[0035] 1.6≤Q OI ≤9 Equation 2;

[0036] 0.5≤C OI <1.6 Equation 3;

[0037] Among them, V C Electrolyte wetting rate of the orientation region, unit: mm / 100s, V Q Q represents the electrolyte wetting rate in the dispersed region, expressed in mm / 100s. OI C represents the OI value of the diffusion region. OI The OI value is the region enclosed by the first concentric circular stripe in the orientation region.

[0038] In this invention, due to the lower OI value of the oriented region electrode, the graphite particles in this area are mostly distributed perpendicular to the electrode direction, which can improve the longitudinal electrolyte wetting ability of the graphite negative electrode, thereby ensuring faster longitudinal liquid phase diffusion and rapid insertion of lithium ions, and helping to improve the reaction kinetics of lithium ions. Due to the higher OI value of the dispersed region electrode, the active material particles in this region have a gentler orientation, which can ensure the lateral electrolyte wetting ability of the negative electrode, that is, ensure the lateral liquid phase diffusion ability of lithium ions, alleviate the difficulty of lateral transport of lithium ions in the battery, and avoid excessive diffusion resistance of electrolyte entering from the electrode edge, leading to a lack of electrolyte in the middle of the electrode core, thus affecting the battery cycle performance. The electrolyte wetting rate of both regions satisfies: 0.8 <VC / V Q <1 ensures that the negative electrode has a reasonable match between the longitudinal liquid phase diffusion capability and the lateral liquid phase diffusion capability of lithium ions, so that the negative electrode has both good lithium ion reaction kinetics and cycle performance.

[0039] It should be noted that the electrolyte wetting rate testing method of the present invention includes the following steps: After drying the 0SOC negative electrode in a glove box, cut it into 4×4cm pieces and place it on the sample stage, keeping the surface of the negative electrode flat; turn on the microscope and adjust the lens and sample stage until the image is clear; then use a 700μm inner diameter capillary glass tube (a transparent graduation label can be attached to the outer wall of the tube for easy observation of liquid level changes) to draw a certain amount of electrolyte (liquid level height H = 14mm), clamp the capillary glass tube in a clamp, further adjust the image for clarity, lower the capillary tube until it contacts the test point on the negative electrode, and start recording and timing as the liquid level in the capillary glass tube descends; stop recording and timing after the liquid level has descended completely. Compare the wetting time of the same volume of electrolyte to obtain the electrolyte wetting rate V, i.e., V = ΔV / ΔT, where ΔV: electrolyte volume (total electrolyte volume in the capillary glass tube - remaining volume); ΔT: wetting time. Regarding the composition of the electrolyte, the present invention does not impose any particular limitation, and it is generally consistent with the electrolyte used in batteries. For example, an electrolyte composed of an organic solvent and an electrolyte salt can be selected; the organic solvent can be at least one of ethylene carbonate (EC), propylene carbonate (PC), dimethyl carbonate (DMC), diethyl carbonate (DEC), and ethyl methyl carbonate (EMC); the electrolyte salt is lithium hexafluorophosphate (LiPF6).

[0040] Q OI The test can be performed by taking a sample from the negative electrode along the diffuse region, placing the sample horizontally, and performing X-ray diffraction spectroscopy. The scanning angle is 10-80°. The ratio of the intensity (or integrated area) of the 004 characteristic diffraction peak to the intensity (or integrated area) of the 110 characteristic diffraction peak is described as the OI value of the diffuse region, i.e., b = C(004) / C(110); similarly, C OI The test can be referred to Q. OI The testing method differs only in that: the negative electrode sample is cut along the area enclosed by the first concentric circle stripe in the orientation region. Furthermore, the area enclosed by the first concentric circle stripe can also be understood as the area enclosed by the concentric circle stripe closest to the center. See details... Figure 1 .

[0041] The present invention does not specifically limit the type or source of the graphite mentioned above. Those skilled in the art may choose conventional graphite for electrode materials, such as natural graphite or artificial graphite.

[0042] As for the material of the current collector, the present invention does not make specific limitations. For example, it can be selected from any one or more of copper foil, titanium foil, tin foil, chromium foil and composite foils of the above metals.

[0043] To further balance the longitudinal and lateral diffusion of lithium ions in the negative electrode, thereby ensuring improved lithium-ion reaction kinetics without excessively affecting cycle performance, in a preferred embodiment, the negative electrode also satisfies: N≥5; and / or 0.85 <V C / V Q <1.

[0044] Furthermore, in one specific embodiment, 5.9mm / 100s≤V Q ≤6.7mm / 100s; 5.2mm / 100s≤V C ≤6.39mm / 100s.

[0045] For example, V Q For 5.9mm / 100s, 6.0mm / 100s, 6.1mm / 100s, 6.2mm / 100s, 6.3mm / 100s, 6.4mm / 100s, 6.5mm / 100s, 6.6mm / 100s, 6.7mm / 100s, etc.; V C For 5.2mm / 100s, 5.3mm / 100s, 5.4mm / 100s, 5.5mm / 100s, 5.6mm / 100s, 5.7mm / 100s , 5.8mm / 100s, 5.9mm / 100s, 6.0mm / 100s, 6.1mm / 100s, 6.2mm / 100s, 6.3mm / 100s.

[0046] In a preferred embodiment, the negative electrode also satisfies the following formula 4:

[0047] 0.6≤R C / R Q <1 Equation 4;

[0048] Among them, combined Figure 1 R Q R is the straight-line distance from the center of the Nth concentric circular stripe. C It is the straight-line distance from the center of the (N-1)th concentric circular stripe.

[0049] If the RC / RQ value is less than 0.6, the battery's kinetic performance is poor. If the RC / RQ value is greater than 1, there is a problem with the electrolyte wetting ability, making it difficult for lithium ions to transport laterally and reducing the battery's long-cycle stability.

[0050] In one specific implementation, 0.65 ≤ RQ / R C ≤0.75. For example, R Q / R C The values ​​are 0.66, 0.67, 0.68, 0.69, 0.7, 0.71, 0.72, 0.73, 0.74, 0.75, etc.

[0051] In one specific embodiment, the graphite content in the negative electrode active material layer is 70% to 99% by mass. This embodiment, by limiting the proportion of graphite, can further optimize the conductivity of the negative electrode sheet.

[0052] For example, the adhesives mentioned above include, but are not limited to, at least one of the following: carboxymethyl cellulose, styrene-butadiene rubber, polyvinyl chloride, carboxylated polyvinyl chloride, polyvinyl fluoride, ethylene oxide-containing polymers, polyvinylpyrrolidone, polyurethane, polytetrafluoroethylene, polyvinylidene fluoride, polyethylene, polypropylene, polyamide-imide, polyvinyl alcohol, and sodium polyacrylate.

[0053] The conductive agent can be selected from at least one of natural graphite, artificial graphite, carbon black, acetylene black, Ketjen black, carbon fiber, carbon nanotubes, metal powder, and graphene; the dispersant can be selected from at least one of sodium carboxymethyl cellulose, triethylhexyl phosphate, and sodium dodecyl sulfate.

[0054] The negative electrode active material layer may also include a dispersant, which may be selected from at least one of sodium carboxymethyl cellulose, triethylhexyl phosphate, and sodium dodecyl sulfate.

[0055] Regarding the thickness of the negative electrode sheet and the thickness of the negative electrode active material layer, the present invention does not impose specific limitations. However, in order to balance battery capacity, cycle life and energy density, in one specific embodiment, the thickness of the negative electrode sheet is 40-120μm, specifically including but not limited to: 50μm, 60μm, 70μm, 80μm, 90μm, 100μm, 110μm, etc.; the thickness of the negative electrode active material layer is 20-60μm, specifically including but not limited to: 25μm, 30μm, 35μm, 40μm, 45μm, 50μm, 55μm, etc.

[0056] Secondly, the present invention provides a method for preparing the above-mentioned negative electrode sheet, comprising the following steps:

[0057] An electrode slurry comprising an active material, a binder, and a conductive agent is coated onto at least one surface of a current collector. The current collector coated with the electrode slurry is then induced by a rotating magnetic field and dried to obtain the negative electrode sheet. The rotating magnetic field includes a magnet. The perpendicular distance between the current collector coated with the electrode slurry and the magnet is m, and the rotational speed of the rotating magnetic field is n, where 0 mm... <m≤5mm;0r / min<n≤400r / min。

[0058] The above preparation method can obtain a negative electrode sheet that satisfies Equation 1-3 by inducing the current collector coated with electrode slurry to pass through a rotating magnetic field under specific conditions. The principle is as follows: the orientation of graphite particles changes due to the action of the magnetic field. The rotating magnetic field affects the magnetic force action time. Since the rotational angular velocity is the same on the rotating table, the magnetic force effect changes with the distance from the center and the rotational angular velocity, thereby forming a negative electrode sheet with N concentric circular stripes on the surface. The OI value of the electrode sheet is related to the magnetic field action time and the magnetic field strength. Therefore, the above method can control the values ​​of m and n to make the electrode sheet satisfy the conditions of Equation 1-3.

[0059] In one specific embodiment, the aforementioned rotating magnetic field can be constructed from a permanent magnet and a rotating platform, and the rotation speed of the rotating magnetic field can be adjusted by adjusting the rotation speed of the rotating platform.

[0060] In a preferred embodiment, 0.5mm ≤ m ≤ 2mm, 75r / min <n≤250r / min。

[0061] Thirdly, the present invention provides a battery comprising the negative electrode sheet described in the first aspect.

[0062] It should be noted that the above-mentioned batteries may include, but are not limited to, lithium-ion power batteries, solar cells, and novel energy storage batteries. That is, the actual application form of the battery provided by the present invention may be, but is not limited to, the listed products, or may be other application forms. For example, when the battery is a lithium-ion power battery, it includes at least one of cylindrical batteries, prismatic batteries, etc.

[0063] Generally speaking, the above-mentioned battery includes a positive electrode, a negative electrode, a separator, and an electrolyte.

[0064] The aforementioned positive electrode generally includes a current collector and a positive electrode active material layer disposed on at least one functional surface of the current collector; the positive electrode active material layer includes an active material.

[0065] In one specific embodiment, the positive electrode active material layer comprises, by mass percentage: 70-99% positive electrode active material, 0.5%-10% binder, and 0.7%-10% conductive agent.

[0066] For example, the above-mentioned positive electrode active materials include, but are not limited to, one or more of lithium nickel manganese oxide, lithium nickel cobalt manganese oxide, lithium nickel cobalt aluminum oxide, and lithium iron phosphate; the lithium nickel cobalt manganese oxide material may be LiNi 1 / 3 Co 1 / 3 Mn 1 / 3 O2, LiNi 0.5 Co 0.2 Mn 0.3 O2, LiNi 0.6 Co0.2 Mn 0.2 O2, LiNi 0.8 Co 0.1 Mn 0.1 One or more of O2.

[0067] The aforementioned adhesives include, but are not limited to, at least one of the following: carboxymethyl cellulose, styrene-butadiene rubber, polyvinyl chloride, carboxylated polyvinyl chloride, polyvinyl fluoride, ethylene oxide-containing polymers, polyvinylpyrrolidone, polyurethane, polytetrafluoroethylene, polyvinylidene fluoride, polyethylene, polypropylene, polyamide-imide, polyvinyl alcohol, and sodium polyacrylate.

[0068] The conductive agent can be selected from at least one of natural graphite, artificial graphite, carbon black, acetylene black, Ketjen black, carbon fiber, carbon nanotubes, metal powder, and graphene; the dispersant can be selected from at least one of sodium carboxymethyl cellulose, triethylhexyl phosphate, and sodium dodecyl sulfate.

[0069] The dispersant mentioned above can be at least one of sodium carboxymethyl cellulose, triethylhexyl phosphate, and sodium dodecyl sulfate.

[0070] This invention does not impose any particular limitation on the aforementioned diaphragm; any known porous diaphragm with electrochemical and chemical stability can be selected, such as at least one of glass fiber, nonwoven fabric, polyethylene, polypropylene, or polyvinylidene fluoride. The diaphragm can be single-layered or multi-layered.

[0071] The electrolyte comprises an organic solvent and an electrolyte salt. The organic solvent serves as the ion transport medium in the electrochemical reaction and can be any organic solvent known in the art for use in battery electrolytes; for example, the organic solvent can be at least one of ethylene carbonate (EC), propylene carbonate (PC), dimethyl carbonate (DMC), diethyl carbonate (DEC), and ethyl methyl carbonate (EMC). In specific embodiments, two or more of the above-mentioned organic solvents may be selected.

[0072] The electrolyte salt serves as the ion source and can be any electrolyte salt known in the art for use in battery electrolytes. Exemplarily, the electrolyte salt can be at least one of lithium hexafluorophosphate (LiPF6), lithium tetrafluoroborate (LiBF4), lithium perchlorate (LiClO4), lithium hexafluoroarsenate (LiAsF6), lithium nitrate (LiNO3), and lithium fluoride (LiF).

[0073] Fourthly, the present invention provides a battery pack comprising the battery described in the third aspect.

[0074] Fifthly, the present invention provides an electronic device comprising the battery described in the third aspect or the battery pack described in the fourth aspect.

[0075] It should be noted that the aforementioned electronic devices can be any conventional device that requires electricity, such as, but not limited to, computers, electric vehicles, air conditioners, refrigerators, washing machines, microwave ovens, printers, fax machines, etc.

[0076] The technical solution of the present invention will be further illustrated below with reference to specific embodiments. All parts, percentages and ratios recorded in the following embodiments are based on weight. All reagents used in the embodiments are commercially available or synthesized by conventional methods and can be used directly without further processing. The instruments used in the embodiments are also commercially available.

[0077] Example 1

[0078] This example provides a negative electrode sheet, comprising a copper foil and negative electrode active material layers respectively disposed on two functional surfaces of the copper foil; the thickness of each negative electrode active material layer is 145 μm, and the double-sided areal density of the negative electrode sheet is 220 g / m³. 2 Compacted to 1.52 g / cm³ 3 The negative electrode active material layer, by weight percentage, comprises: 95% graphite, 1% conductive carbon black, 1% sodium carboxymethyl cellulose, and 3% styrene-butadiene rubber; the D50 of the graphite is 9.5 μm. Furthermore, the surface of the negative electrode active material layer includes N concentric circular stripes, the region between the Nth and (N-1)th concentric circular stripes is a dispersion region, and the region surrounded by the dispersion region is an orientation region (see [reference]). Figure 1 and Figure 2 ), Q OI C OI V Q and V C The specific values ​​are shown in Table 1.

[0079] The above-mentioned method for preparing the negative electrode includes the following steps:

[0080] Graphite, conductive agent, binder and water are mixed to make the solid content of the slurry reach 45.7% (by mass), and stirred to prepare the electrode slurry. The electrode slurry is then coated on both sides of a copper foil with a thickness of 6μm. Then, the copper foil is fixed at a position 2mm away from the permanent magnet at a vertical distance. The permanent magnet is fixed to the surface of the rotating table with strong adhesive double-sided tape. The size of the permanent magnet and the size of the electrode coating are not more than 5mm apart. The rotation speed of the rotating table is adjusted to 75r / min to make concentric circular stripes appear on the surface of the electrode. The electrode is baked in an oven, and then cold-pressed, slit and cut to obtain the above-mentioned negative electrode.

[0081] Examples 2-7

[0082] The negative electrode provided is basically the same as that in Example 1, except that the vertical distance between the copper foil and the permanent magnet and / or the rotation speed of the rotating stage are changed, as detailed in Table 1.

[0083] Comparative Example 1

[0084] The negative electrode sheet provided is basically the same as that in Example 1, except that magnetic field induction is not used, and the electrode paste is directly placed in an oven for baking after being coated with copper foil.

[0085] Comparative Example 2

[0086] The negative electrode sheet provided is basically the same as that in Example 1, except that the vertical distance between the copper foil and the permanent magnet is changed, and the rotation speed of the rotating table is 0. See Table 1 for details.

[0087] Test Example 1

[0088] The following performance characteristics of the negative electrode sheets of the above embodiments and comparative examples were tested, and the results are recorded in Table 1.

[0089] Wetting rate: After drying the 0SOC electrode in a glove box, cut it into 4×4cm pieces and place it on the sample stage, keeping the electrode surface flat. Turn on the microscope and adjust the lens and sample stage until the image is clear. Then, use a 700μm inner diameter capillary glass tube (a transparent graduation label can be attached to the outer wall of the tube for easy observation of liquid level changes) to draw a certain amount of electrolyte (liquid level H = 14mm). Clamp the capillary glass tube to the clamp, further adjust the image for clarity, and lower the capillary tube until it contacts the test point on the negative electrode. Start recording and timing as the liquid level descends. Stop recording and timing after the liquid level has completely descended. Compare the wetting time of the same volume of electrolyte to obtain the electrolyte wetting rate V of the electrode, i.e., V = ΔV / ΔT, where V: wetting rate, ΔV: electrolyte volume, and ΔT: wetting time.

[0090] OI value test: Q OI The test involves taking a sample from the negative electrode along the diffuse region, placing the sample horizontally, and performing X-ray diffraction spectroscopy. The scanning angle is 10–80°. The ratio of the intensity (or integrated area) of the 004 characteristic diffraction peak to the intensity (or integrated area) of the 110 characteristic diffraction peak is Q. OI The value is b = C(004) / C(110); C OI The test can be referred to Q. OI The only difference in the testing method is that the negative electrode sample is cut out along the area enclosed by the first concentric circle stripe in the orientation region.

[0091] Table 1:

[0092]

[0093]

[0094] Note: " / " in the table indicates that there is no corresponding test data.

[0095] As shown in Table 1, the embodiments can adjust the area of ​​the dispersion region and the orientation region, as well as the electrolyte wetting rate of each region, by changing the vertical distance between the current collector and the permanent magnet and / or the rotation speed of the rotary table. However, since no magnetic field induction is used in Comparative Example 1, its negative electrode does not have a dispersion region or an orientation region, and the electrolyte wetting rate of the negative electrode is a fixed value of 6.89 mm / 100 s. Since the magnetic field of Comparative Example 2 does not rotate, its negative electrode only has an orientation region and no dispersion region, and the electrolyte wetting rate of the orientation region is 5.13 mm / 100 s.

[0096] Application Example 1

[0097] The negative electrode sheets of Examples 1-7 and Comparative Examples 1-2 were assembled into batteries. The assembly process included the following steps:

[0098] (1) Electrolyte preparation

[0099] In an argon atmosphere glove box with a water content of <1ppm and an oxygen content of <1ppm, ethylene carbonate (EC), propylene carbonate (PC), diethyl carbonate (DEC), propyl propionate (PP), and ethyl propionate (EP) solvents are uniformly mixed at a certain mass ratio. Then, fluoroethylene carbonate (FEC), 1,3-propanesulfonyl lactone (PS), 1,3,6-hexanetrionitrile, and adiponitrile (ADN) are added to the solvents at a certain mass ratio and mixed uniformly. Finally, LiPF6 is added.

[0100] (2) Preparation of positive electrode

[0101] Lithium iron phosphate (LiFePO4), carbon nanotubes (CNTs), and polyvinylidene fluoride (PVDF) were mixed at a mass ratio of 97.3:0.8:1.9. N-methylpyrrolidone (NMP) was added, and the mixture was stirred under vacuum until a homogeneous positive electrode slurry was formed. This slurry was then uniformly coated onto an Al foil current collector. After drying at 100°C, the mixture was cold-pressed, slit, and cut into sheets. Finally, it was dried under vacuum at 100°C for 4 hours to obtain the positive electrode sheet.

[0102] (3) Preparation of the separating membrane

[0103] The separator is made of polyethylene (PE).

[0104] (4) Preparation of lithium-ion batteries

[0105] The positive electrode, separator, and negative electrode are stacked in sequence, with the separator acting as a separator between the positive and negative electrodes. Then, they are wound up and placed in an outer packaging foil. The prepared electrolyte is injected into the dried battery. After vacuum sealing, settling, formation, and shaping, the lithium-ion battery is completed.

[0106] Test Example 2

[0107] The battery in Application Example 1 was tested for 50% SOC DC internal resistance, liquid phase diffusion impedance, and long cycle test. The test results are shown in Table 2.

[0108] Test method:

[0109] 50% SOC DC internal resistance test: At room temperature (25±5℃), the battery is discharged at 1 / 3C constant current to 2.0V, charged at 1 / 3C constant current to 50% SOC, and left to rest for 30 minutes; discharged at 1.5C constant current for 30 seconds, and the DC internal resistance of the battery at 50% SOC is measured.

[0110] Liquid phase diffusion impedance test: Assemble the two negative electrode plates and the separator in sequence to form the electrode core; place the electrode core in the outer packaging shell, bake and inject electrolyte, and after encapsulation, wetting and other processes, use an electrochemical workstation to conduct liquid phase diffusion impedance test in the frequency range of 300,000Hz-0.05Hz.

[0111] Table 2

[0112] 50% SOC DCIR(Ω) Liquid phase diffusion resistance (Ω) Cyclic capacity retention Example 1 0.779 0.597 0.909 Example 2 0.741 0.502 0.917 Example 3 0.613 0.438 0.939 Example 4 0.609 0.436 0.928 Example 5 0.604 0.428 0.911 Example 6 1.055 0.712 0.940 Example 7 0.606 0.433 0.893 Comparative Example 1 1.436 0.981 0.942 Comparative Example 2 0.599 0.422 0.791

[0113] As shown in Table 2, the battery assembled with the negative electrode sheet of the embodiment can simultaneously maintain the cycle capacity retention rate, 50% SOC DC internal resistance, and liquid phase diffusion resistance within a relatively ideal range. Moreover, the 50% SOC DC internal resistance, liquid phase diffusion resistance, or cycle capacity retention rate of the battery can be flexibly adjusted by changing the vertical distance between the current collector and the permanent magnet and / or the rotation speed of the rotary table. In contrast, the negative electrode sheet of Comparative Example 1, due to the lack of magnetic field induction, produces a battery with a cycle capacity retention rate that is not much different from that of the embodiment, but the 50% SOC DC internal resistance and liquid phase diffusion resistance are significantly higher than those of the embodiment. The negative electrode sheet of Comparative Example 2, due to the lack of rotating magnetic field induction, produces a battery with a lower 50% SOC DC internal resistance and liquid phase diffusion resistance, but its cycle capacity retention rate is significantly lower than that of the embodiment.

[0114] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention, and not to limit them; although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some or all of the technical features; and these modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the scope of the technical solutions of the embodiments of the present invention.

Claims

1. A negative electrode sheet, comprising a current collector and a negative electrode active material layer disposed on at least one functional surface of the current collector; said negative electrode active material layer comprising graphite, characterized in that, The surface of the negative electrode active material layer includes N concentric circular stripes. The region between the Nth and (N-1)th concentric circular stripes is a dispersion region, and the region surrounded by the dispersion region is an orientation region. The negative electrode sheet satisfies the following formulas 1 to 3: 0.8 <V C / V Q <1 Equation 1; 1.6≤Q OI ≤9 Equation 2; 0.5≤C OI <1.6 Equation 3; Among them, V C Electrolyte wetting rate of the orientation region, unit: mm / 100s, V Q Q represents the electrolyte wetting rate in the dispersed region, expressed in mm / 100s. OI C represents the OI value of the diffusion region. OI The OI value of the region enclosed by the first concentric circular stripe in the orientation region; N≥5; The negative electrode also satisfies the following equation 4: 0.6≤R C / R Q <1 Equation 4; Among them, R Q R is the straight-line distance from the center of the Nth concentric circular stripe. C It is the straight-line distance from the center of the (N-1)th concentric circular stripe.

2. The negative electrode sheet according to claim 1, characterized in that, 5.9 mm / 100s≤V Q ≤6.7mm / 100s;5.2mm / 100s≤V C ≤6.39 mm / 100s。 3. The negative electrode sheet according to claim 1, characterized in that, 0.65≤R C / R Q ≤0.75。 4. The negative electrode sheet according to any one of claims 1-3, characterized in that, In the negative electrode active material layer, the mass percentage of graphite is 70% to 99%.

5. A method for preparing a negative electrode sheet as described in any one of claims 1-4, characterized in that, Includes the following steps: An electrode slurry comprising graphite, a binder, and a conductive agent is coated onto at least one surface of a current collector. The current collector coated with the electrode slurry is then induced by a rotating magnetic field and dried to obtain the negative electrode sheet. The rotating magnetic field includes a magnet. The perpendicular distance between the current collector coated with the electrode slurry and the magnet is m, and the rotational speed of the rotating magnetic field is n, where 0 mm... <m≤5mm;0 r / min<n≤400r / min。 6. The preparation method according to claim 5, characterized in that, 0.5mm≤m≤2mm, 75r / min <n≤250r / min。 7. A battery, characterized in that, The negative electrode sheet includes the negative electrode sheet according to any one of claims 1-4 or the negative electrode sheet prepared by any one of claims 5-6.

8. A battery pack, characterized in that, Includes the battery as described in claim 7.

9. An electronic device, characterized in that, Includes the battery as described in claim 7 or the battery pack as described in claim 8.

Citation Information

Patent Citations

  • Lithium ion secondary cell

    CN110165284A

  • Negative electrode plate and secondary battery comprising the same

    US20190348667A1