Electrode active material layer for lithium-ion secondary batteries

JP7897977B1Active Publication Date: 2026-07-30KRI INC
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Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
KRI INC
Filing Date
2025-03-31
Publication Date
2026-07-30

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【0030】 本発明によれば、結着剤、増粘剤、分散剤等の含有量を低減しても、重量バラツキを低減する電極活物質層を提供することができる。

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Abstract

The present invention provides an electrode active material layer that reduces weight variation even when the content of binders, thickeners, dispersants, etc., is reduced. [Solution] An electrode active material layer for a lithium-ion secondary battery, comprising at least an electrode active material and carbon nanotubes, wherein the carbon nanotubes include single-walled carbon nanotubes and multi-walled carbon nanotubes, and with the total amount of the electrode active material layer for a lithium-ion secondary battery being 100% by mass, the total content of carbon nanotubes is 0.01 to 1.4% by mass, and with the total amount of carbon nanotubes being 100% by mass, the content of single-walled carbon nanotubes is 50 to 90% by mass, and the content of multi-walled carbon nanotubes is 10 to 50% by mass.
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Description

[Technical Field]

[0001] This invention relates to an electrode active material layer for lithium-ion secondary batteries. [Background technology]

[0002] The lithium-ion battery (LIB) business has achieved remarkable growth through continuous technological development aimed at miniaturizing, lightening, and enhancing the functionality (pursuit of convenience) of portable devices, leveraging its high energy density, high voltage, and safety features. Now that global environmental and resource issues are in the spotlight, policies such as promoting the spread of eco-cars and transitioning to renewable energy are expected to continue driving the growth of the lithium-ion battery market. If lithium-ion batteries continue to be applied to privately owned electric vehicles (EVs) and stationary energy storage (for leveling renewable energy, etc.), the amount of lithium-ion batteries needed by 2030 is estimated to be approximately 10 times that of 2018. This could lead to unfavorable situations for users from an economic standpoint, such as a sharp rise in battery costs due to resource shortages. Therefore, research and development on reuse, from the perspective of how to use a single battery for as long as possible, and recycling, from the perspective of resource recovery, are becoming more active, and extending the lifespan of batteries is also effective from the standpoint of life cycle assessment (LCA).

[0003] Furthermore, new proposals are being made regarding the future of mobility, including EVs. Concepts such as CASE and MaaS, aimed at improving user convenience, are becoming a reality, and there are signs that mobility, including EVs, will shift from individual ownership to sharing in the future. In this trend, AIEVs (Artificial Intelligence Electric Vehicles), which are expected to be deployed in the market in the future, are EVs equipped with AI, with automated driving, vehicle sharing, and the vehicles being managed by a management company rather than being individually owned. The management company will provide mobility services (CASE) and various services needed by the user inside the vehicle (MaaS). In addition, since the management company will be able to control driving and charging / discharging, it will be possible to operate the vehicle with consideration for battery life and safety. Moreover, vehicle sharing can reduce the burden on users to about 1 / 5 of that compared to individual ownership, making it economically superior. In other words, in the future, replacing private cars, which are predominantly gasoline-powered, with AIEVs (shared cars) is expected to contribute to the global environment, reduce traffic accidents and congestion, provide a new mode of transportation for aging and depopulated areas, reduce individual costs, and enable more effective use of travel time. Furthermore, AIEVs can also function as a massive energy storage system, automatically charging and discharging electricity generated from renewable energy sources with significant fluctuations, using a management system operated by the management company.

[0004] However, achieving this would require a reassessment of the development direction of lithium-ion batteries, which are currently the mainstream (Figure 1).

[0005] In particular, a dramatic increase in the lifespan of batteries used in electric vehicles is absolutely essential. To realize AIEVs, unlike when a vehicle is privately owned, the total driving range of the vehicle needs to be, for example, 500,000 km or more. If the battery life remains at the current level, multiple battery replacements will be necessary, which will impair economic efficiency and will not solve resource problems. The required battery performance will prioritize lifespan over the currently mainstream requirements of energy density (driving range) and fast charging. Specifically, an energy density of 400 Wh / L per cell is required, and the vehicle driving range is 200-300 km with a 20-30 kWh battery, but the target for actual operating lifespan needs to be more than five times that of the current battery.

[0006] While various studies have been conducted to extend the lifespan of batteries, if the goal is to achieve a practical operating life that is more than five times longer than the current lifespan, a new perspective is needed. In contrast to the many degradation factors that have been studied in the past, such as degradation due to oxidation and reduction of active materials and components, degradation due to the insertion and removal of lithium ions from the active material, consumption of lithium ions due to the decomposition of the electrolyte, and degradation due to electrode loosening, the inventors of this invention have focused on the overvoltage factor.

[0007] The inventors have explained phenomena such as low-temperature degradation and secondary degradation by defining a new degradation mechanism called "degradation due to overvoltage factor (current × resistance)." Degradation due to overvoltage factor is defined as a degradation factor affected by load current and battery resistance (DC resistance). For example, degradation during low-temperature cycles can be explained as being caused by an increase in resistance at low temperatures, and degradation due to rapid charging can be explained as being caused by an increase in load current. Furthermore, as a battery degrades, its resistance increases, and as its capacity degrades, the load on the active material (apparent load) increases when the same current as the initial load is applied. Moreover, if gas accumulates in the electrode group, since gas does not allow ions to pass through, a load is placed on the electrode parts and active material other than the gas reservoir. From this perspective, one factor affecting battery life as an overvoltage factor is the uneven distribution of reactions within the electrodes. If reactions do not occur uniformly within the electrodes, stress accumulates on some of the active materials used in the electrodes during long-term battery operation. For example, in the case of the negative electrode, this can lead to lithium ion consumption due to localized strong reduction, and in the worst case, induce lithium electrodeposition. In the case of the positive electrode, it can induce degradation of the positive electrode active material due to cracks, etc. As a result, after repeated charge-discharge cycles, a sharp decrease in capacity and a sharp increase in resistance (secondary degradation) almost always occur. By homogenizing the reactions in the electrodes and suppressing the uneven distribution of reactions within the battery, this secondary degradation (sharp decrease in capacity) can be suppressed, and the battery life can be dramatically extended. For this reason, homogenizing the reactions within the battery is important, but currently, there are very few efforts being made to homogenize the reactions within the battery.

[0008] In order to homogenize the reactions within the battery, it is important to adopt an electrode structure that can homogenize ion movement within the electrode. As means for this, considerations such as increasing the porosity of the electrode or decreasing the basis weight of the electrode have been made heretofore. However, since these methods are accompanied by a decrease in energy density (travel distance), these methods alone have limitations from the perspective of ensuring the above-mentioned 400 Wh / L level. Further, factors that can inhibit ion movement within the electrode, specifically, electrode constituent materials such as binders usually used to impart strength to the electrode, thickeners used to stabilize the electrode slurry, dispersants, etc., are considered to be effective from the perspective of homogenizing ion movement within the electrode. However, reducing or eliminating these constituent materials significantly reduces the strength of the electrode, and it cannot follow the volume changes of the electrode during charge and discharge. In addition to the degradation of life characteristics due to the lack of current collection paths, etc., electrode manufacturing becomes difficult due to peeling of the electrode layer, generation of cracks, etc. during the Roll to Roll conveyance, pressing, and slitting processes during electrode manufacturing.

[0009] As a result of intensive studies, the inventors have found that by including no or only a very small amount of electrode constituent materials such as binders that can inhibit ion movement within the electrode, and performing current collection between active material particles and maintaining the shape of the electrode with a very small amount of carbon nanotubes, it is possible to have a strength sufficient to maintain the shape of the electrode and to make it difficult to inhibit the movement of lithium ions, thereby homogenizing the reactions within the battery and extending the life of the battery (see, for example, Patent Document 1).

Prior Art Documents

Patent Documents

[0010]

Patent Document 1

Summary of the Invention

Problems to be Solved by the Invention

[0011] However, the role of the binder is to (1) ensure adhesion between electrode active materials and (2) ensure adhesion between electrode active materials and electrode current collectors. If the binder is eliminated to the extreme, electrode strength becomes a technical challenge. If the electrode strength is low, the electrode active materials expand and contract during charging and discharging, which can damage the electrode structure and reduce conductivity within the electrode, potentially degrading the battery's lifespan due to current collection degradation. Therefore, simply reducing the binder does not allow for both mitigating reaction unevenness and improving lifespan characteristics.

[0012] Furthermore, as a result of the inventors' research, it was found that when electrode constituent materials such as binders that can inhibit the movement of ions within the electrode are omitted or used in very small amounts, separation of the solvent used to manufacture the electrode active material layer occurs in the wet state, possibly because dispersants are omitted or used in very small amounts. This results in variations in solid content immediately after coating and some unevenness in the wet state, indicating that there is room for improvement in the stability of the slurry. In addition, it was found that when such a slurry is dried, there is a large variation in weight when measured by gravimetric analysis. When there is such a large variation in weight when measured by gravimetric analysis, the ratio of solvent to active material differs from place to place. In areas with a relatively small amount of active material, the electrode is used excessively, preventing the reaction from being carried out uniformly, and in the case of the negative electrode, electrodeposition is more likely.

[0013] The present invention aims to solve the above-mentioned problems and provides an electrode active material layer that reduces weight variation even when the content of binders, thickeners, dispersants, etc. is reduced. [Means for solving the problem]

[0014] In view of the above-mentioned problems, the inventors have diligently conducted research. As a result, they have found that by including predetermined amounts of single-walled carbon nanotubes and multi-walled carbon nanotubes in an electrode active material layer with reduced content of binders, thickeners, dispersants, etc., it is possible to provide an electrode active material layer that reduces weight variation even when the content of binders, thickeners, dispersants, etc. is reduced. The present invention was completed based on this finding and further research. That is, the present invention encompasses the following configuration.

[0015] Item 1. Contains at least an electrode active material and carbon nanotubes, The carbon nanotubes include single-walled carbon nanotubes and multi-walled carbon nanotubes. Assuming the total amount of the electrode active material layer for the lithium-ion secondary battery is 100% by mass, The total carbon nanotube content is 0.01 to 1.4% by mass, and An electrode active material layer for a lithium-ion secondary battery, wherein the total amount of carbon nanotubes is 100% by mass, the content of single-walled carbon nanotubes is 50-90% by mass, and the content of multi-walled carbon nanotubes is 10-50% by mass.

[0016] Item 2. The total amount of the electrode active material layer for the lithium-ion secondary battery is set to 100% by mass, The content of the electrode active material is 96.0 to 99.9% by mass. The content of conductive additives other than carbon nanotubes is 0 to 3.5% by mass. The electrode active material layer for a lithium-ion secondary battery according to item 1, wherein the content of the electrode constituent materials, excluding the electrode active material, the carbon nanotubes, and conductive additives other than the carbon nanotubes, is 0 to 2.0% by mass.

[0017] Item 3. Assuming the total amount of the electrode active material layer is 100% by mass, The content of the electrode active material is 96.0 to 99.9% by mass. The content of conductive additives other than carbon nanotubes is 0 to 3.5% by mass. It does not contain electrode constituent materials other than the electrode active material, the carbon nanotube, and the conductive additive other than the carbon nanotube, This is the positive electrode for lithium-ion secondary batteries. An electrode active material layer for lithium-ion secondary batteries as described in item 2.

[0018] Item 4. Assuming the total amount of the electrode active material layer is 100% by mass, The content of the electrode active material is 96.6 to 99.9% by mass. The content of electrode constituent materials other than the electrode active material and the carbon nanotubes is 0 to 2.0% by mass, and The negative electrode for lithium-ion secondary batteries, An electrode active material layer for lithium-ion secondary batteries as described in item 2.

[0019] Item 5. Assuming the total amount of the electrode active material layer is 100% by mass, The content of the electrode active material is 97.4 to 99.9% by mass. The content of electrode constituent materials other than the electrode active material and the carbon nanotubes is 0 to 1.2% by mass. An electrode active material layer for lithium-ion secondary batteries as described in item 2.

[0020] Item 6. The electrode active material layer for lithium-ion secondary batteries described in Item 5, which is a negative electrode active material layer for lithium-ion secondary batteries.

[0021] Item 7. An electrode active material layer for a lithium-ion secondary battery according to any one of items 1 to 6, wherein the electrode active material is a material capable of intercalating and releasing lithium ions.

[0022] Item 8. An electrode active material layer for a lithium-ion secondary battery, as described in any one of items 1 to 7, for use in a lithium-ion secondary battery used in an electric vehicle for car sharing.

[0023] Item 9. An electrode for a lithium-ion secondary battery, comprising an electrode current collector, an undercoat layer, and an electrode active material layer for a lithium-ion secondary battery as described in any one of items 1 to 8.

[0024] Item 10. The electrode for a lithium-ion secondary battery according to Item 9, wherein the undercoat layer contains at least a conductive additive and the undercoat layer constituent material excluding the conductive additive.

[0025] Item 11. The electrode for a lithium-ion secondary battery according to Item 10, wherein the content of the conductive additive is 20 to 80% by mass, with the total amount of the undercoat layer being 100% by mass, and the content of the undercoat layer constituent materials excluding the conductive additive is 20 to 80% by mass.

[0026] Item 12. An electrode for a lithium-ion secondary battery according to any one of items 9 to 11, wherein the thickness of the undercoat layer is 0.1 to 10.0 μm.

[0027] Item 13. A lithium-ion secondary battery electrode as described in any one of items 9 to 12, for use in electric vehicles for car sharing.

[0028] Item 14. A lithium-ion secondary battery comprising electrodes for lithium-ion secondary batteries as described in any one of items 9 to 13.

[0029] Item 15. A lithium-ion secondary battery as described in Item 14, used in electric vehicles for car sharing. [Effects of the Invention]

[0030] According to the present invention, it is possible to provide an electrode active material layer that reduces weight variation even when the content of binders, thickeners, dispersants, etc., is reduced. [Brief explanation of the drawing]

[0031] [Figure 1] This is a schematic diagram illustrating the direction of lithium-ion battery development, taking into account a world view in which the use and operation of automobiles will change significantly. [Modes for carrying out the invention]

[0032] In this specification, "contains" is a concept that encompasses all of the following: "contains," "consist essentially of," and "consist of."

[0033] Furthermore, in this specification, the notation "A~B" means "greater than or equal to A and less than or equal to B".

[0034] 1. Electrode active material layer for lithium-ion secondary batteries and electrodes for lithium-ion secondary batteries Generally, the active material layer in an electrode often contains a considerable amount of electrode constituent materials other than the active material, such as binders, thickeners, and dispersants. Since these electrode constituent materials other than the active material are impermeable to lithium ions, if a considerable amount of these materials is present, it inhibits the movement of lithium ions, making uniform charging and discharging impossible. When lithium ion movement is inhibited, the reaction concentrates in areas where the inhibition of lithium ion movement is less pronounced. As a result, in the case of the negative electrode, this induces lithium electrodeposition, and in the case of the positive electrode, it induces degradation of the positive electrode active material due to cracks, etc. Therefore, after repeated charging and discharging cycles, a rapid decrease in capacity and a rapid increase in resistance (secondary degradation) occur. On the other hand, simply reducing the amount of electrode constituent materials other than the active material does not maintain sufficient strength to preserve the shape of the electrode. Cracks occur due to pressing during electrode manufacturing, and expansion and contraction during charging and discharging break the electrode structure, leading to a decrease in current collection degradation such as reduced conductivity within the electrode, thus reducing the battery's lifespan characteristics. Therefore, simply reducing the amount of electrode constituent materials other than the electrode active material does not allow for both mitigating reaction unevenness and improving lifespan characteristics. In the case of the negative electrode, as described above, the electrode structure breaks down, and the battery's lifespan characteristics deteriorate due to current collection degradation such as a decrease in conductivity within the electrode. Similarly, in the case of the positive electrode, as described above, current collection degradation such as a decrease in conductivity within the electrode is induced, so it has been common technical knowledge that the amount of electrode constituent materials other than the electrode active material cannot be significantly reduced. This tendency is particularly pronounced in the negative electrode where the electrode structure breaks down.

[0035] On the other hand, by omitting or using only a very small amount of electrode constituent materials such as binders that can inhibit ion movement within the electrode, and by using a very small amount of carbon nanotubes to collect current between active material particles and maintain the electrode shape, it is possible to achieve sufficient strength to maintain the electrode shape while not inhibiting lithium ion movement, thereby homogenizing the reaction within the battery and extending the battery life. However, when electrode constituent materials such as binders that can inhibit ion movement within the electrode are omitted or used only in very small amounts, separation of the solvent used to manufacture the electrode active material layer occurs in the wet state, possibly because dispersants are not used or are used only in very small amounts. As a result, variations in solid content occur immediately after coating, and some unevenness occurs in the wet state, indicating that there is room for improvement in the stability of the slurry. Furthermore, when such a slurry is dried, it was found that there is a large variation in weight in gravimetric measurements. When there is such a large variation in weight in gravimetric measurements, the ratio of solvent to active material differs from place to place. In areas with relatively little active material, the electrode is used excessively, making it impossible to carry out the reaction uniformly, and in the case of the negative electrode, electrodeposition is more likely.

[0036] In contrast, the electrode active material layer for lithium-ion secondary batteries of the present invention contains at least an electrode active material and carbon nanotubes, wherein the carbon nanotubes include single-walled carbon nanotubes and multi-walled carbon nanotubes, and the total amount of carbon nanotubes in the electrode active material layer for lithium-ion secondary batteries is 100% by mass, with a total carbon nanotube content of 0.01 to 1.4% by mass, and the total amount of single-walled carbon nanotubes is 50 to 90% by mass, with a total carbon nanotube content of 100% by mass, and the multi-walled carbon nanotube content is 10 to 50% by mass.

[0037] By adopting this configuration, multi-walled carbon nanotubes can disperse single-walled carbon nanotubes, thereby stabilizing the slurry. On the other hand, since single-walled carbon nanotubes easily improve electrode strength, as described above, by including predetermined amounts of single-walled and multi-walled carbon nanotubes, weight variation can be reduced even if the content of binders, thickeners, dispersants, etc. is reduced. In the present invention, since weight variation can be reduced, the ratio of solvent to active material does not vary much from place to place, and the electrode is not excessively used in areas with relatively low amounts of active material, allowing the reaction to be carried out uniformly. Therefore, the electrode active material layer for lithium-ion secondary batteries of the present invention can be used to reduce the uneven distribution of reactions in lithium-ion secondary batteries.

[0038] (1-1) Electrode active material layer The following describes four preferred embodiments of the electrode active material layer in order.

[0039] [1-1-1] Electrode active material layer for lithium-ion secondary battery (first embodiment) The electrode active material layer for lithium-ion secondary batteries according to the first aspect of the present invention is an electrode active material layer for lithium-ion secondary batteries containing an electrode active material and carbon nanotubes, wherein the content of the electrode active material is 97.4 to 99.9% by mass, the content of the carbon nanotubes is 0.01 to 1.4% by mass, and the content of electrode constituent materials other than the electrode active material and carbon nanotubes is 0 to 1.2% by mass, and it is preferably a negative electrode active material layer for lithium-ion secondary batteries. Furthermore, with the total amount of carbon nanotubes being 100% by mass, the content of single-walled carbon nanotubes is 50 to 90% by mass, and the content of multi-walled carbon nanotubes is 10 to 50% by mass. In the electrode active material layer for lithium-ion secondary batteries according to the first aspect, the total amount of the electrode active material (negative electrode active material), carbon nanotubes, and conductive additives other than the electrode active material (negative electrode active material) and carbon nanotubes (total amount of the electrode active material layer for lithium-ion secondary batteries) is 100% by mass.

[0040] 1-1-1-1. Electrode active material The electrode active material (negative electrode active material) is not particularly limited, and a material that can be used as a negative electrode active material in a lithium-ion secondary battery, that is, a material capable of occluding and releasing lithium ions can be used. Examples include carbon materials such as natural graphite, artificial graphite, and amorphous carbon; metal materials capable of alloying with lithium, such as Si, Al, Sn, Pb, Zn, Bi, In, Mg, Ga, Si alloys, Sn alloys, and Al alloys; SiO x (0 < x < 2), SnO x (0 < x < 2), Si, Li2TiO3, vanadium oxides, and other metal oxides capable of occluding and releasing lithium ions; composite materials containing metal materials and carbon materials, such as Si-C composites and Sn-C composites. Note that as the amorphous carbon, the amorphous carbon material described later can also be used. These electrode active materials (negative electrode active materials) can be used alone or in combination of two or more. From the viewpoint of particularly suppressing the volume change of the electrode active material (negative electrode active material) during charge and discharge and particularly improving the charge and discharge cycle characteristics, materials not containing silicon, that is, carbon materials; metal materials not containing silicon, such as Al, Sn, Pb, Zn, Bi, In, Mg, Ga, Sn alloys, and Al alloys, which are capable of alloying with lithium; SnO x (0 < x < 2), Si, Li2TiO3, vanadium oxides, and other metal oxides that do not contain silicon and are capable of occluding and releasing lithium ions; composite materials that do not contain silicon and contain metal materials and carbon materials, such as Sn-C composites, can also be adopted. Among them, when a conductive material such as a carbon material is used as the electrode active material (negative electrode active material), it also functions as a conductive aid for the electrode active material (negative electrode active material), and it is particularly easy to reduce the content of substances that inhibit the movement of lithium ions.

[0041] As for the electrode active material (negative electrode active material) described above, from the viewpoint of easily reducing weight variation, easily improving strength, particularly suppressing volume change of the electrode active material (negative electrode active material) during charging and discharging, easily suppressing capacity reduction due to volume change, and particularly improving charge-discharge cycle characteristics, it is preferable that the volume change of the electrode active material (negative electrode active material) during charging and discharging is 50% or less, preferably 20% or less. Note that the smaller the volume change, the better, and no lower limit is set, but if a lower limit were set, it would be 0%. Note that this volume change value is set to 0% when there is no volume change at all, and it indicates how much the electrode active material (negative electrode active material) at full charge expands compared to the electrode active material (negative electrode active material) at full discharge, and is expressed by the following formula: ((Volume when fully charged) - (Volume when fully discharged)) / (Volume when fully discharged) × 100 It is calculated by [method].

[0042] Examples of electrode active materials (negative electrode active materials) that satisfy such volume changes include carbon materials such as natural graphite, artificial graphite, and amorphous carbon; and lithium composite titanium oxide (Li2TiO3, etc.). The volume changes of these materials vary depending on the material type and charge / discharge depth, but are around 10% for graphite and a few percent for amorphous carbon. Furthermore, when using multiple electrode active materials (negative electrode active materials), it is preferable that the average volume change of the electrode active materials (negative electrode active materials) falls within the above range.

[0043] There are no particular restrictions on the shape of the electrode active material (negative electrode active material), and various shapes such as spherical, flaky, lumpy, fibrous, whisker-like, and crushed can be used. Furthermore, a combination of electrode active materials (negative electrode active materials) of multiple shapes can be used. Note that "spherical" can refer to a perfect sphere, an elliptical shape, or other shapes.

[0044] Furthermore, while the particle size of the electrode active material (negative electrode active material) is not particularly limited, an average particle size of 0.1 to 25 μm is preferred, and 1 to 20 μm is more preferred, from the viewpoint of easily reducing weight variation, easily improving strength, easily collecting current between negative electrode active material particles with a small amount of carbon nanotubes, and easily extending the battery life. In addition, considering the homogenization of the reaction at low temperatures, the average particle size of the electrode active material (negative electrode active material) can also be 0.1 to 13.0 μm, preferably 0.5 to 10.0 μm, and more preferably 1.0 to 8.0 μm. The average particle size of the negative electrode active material is measured by laser diffraction / scattering.

[0045] The electrode active material layer for lithium-ion secondary batteries according to the first embodiment can collect current between active material particles and maintain the shape of the electrodes using only a very small amount of carbon nanotubes. As a result, the amount of electrode constituent materials other than the electrode active material (negative electrode active material) can be reduced. Consequently, it is easier to maintain sufficient strength to maintain the shape of the electrodes, and it is less likely to hinder the movement of lithium ions. Therefore, it is easier to homogenize the reaction within the battery, reduce weight variations, and extend the battery life. Compared to the current electrode active material layer type (negative electrode active material layer), the content of electrode active material (negative electrode active material) is larger. For this reason, the content of negative electrode active material is preferably 97.5 to 99.9% by mass, more preferably 97.8 to 99.7% by mass, and even more preferably 98.1 to 99.5% by mass. When using multiple electrode active materials (negative electrode active materials), it is preferable to adjust their total amount so that it falls within the above range. In the electrode active material layer for lithium-ion secondary batteries according to the first embodiment, the total amount of electrode active material (negative electrode active material), carbon nanotubes, and electrode constituent materials other than electrode active material (negative electrode constituent materials) (total amount of electrode active material layer) is 100% by mass.

[0046] 1-1-1-2. Carbon nanotubes The electrode active material layer for lithium-ion secondary batteries according to the first embodiment facilitates current collection between active material particles and maintains electrode shape using a very small amount of carbon nanotubes, and also reduces the amount of electrode constituent materials other than the electrode active material (negative electrode active material). Since it does not easily inhibit lithium ion movement, it can homogenize the reaction within the battery and extend the battery life. Furthermore, by including predetermined amounts of single-walled carbon nanotubes and multi-walled carbon nanotubes, weight variation can be reduced even if the content of binders, thickeners, dispersants, etc. is reduced. In the present invention, since weight variation can be reduced, the ratio of solvent to active material does not vary much from place to place, and electrodes are not excessively used in areas with relatively small amounts of active material, allowing for a uniform reaction. Although carbon nanotubes are substances that inhibit lithium ion movement, in small amounts they do not inhibit lithium ion movement, that is, the reaction within the battery can be kept uniform.

[0047] Carbon nanotubes are hollow carbon materials formed by closing a graphite sheet (i.e., a carbon atom plane with a graphite structure or a single layer of graphene sheet) into a tubular shape. Their diameter is on the nanometer scale, and their wall structure has a graphite structure. Carbon nanotubes in which the wall structure is closed with a single graphite sheet (single layer of graphene sheet) are called single-walled carbon nanotubes. On the other hand, carbon nanotubes in which multiple graphite sheets are each closed into tubes and nested together are called nested multi-walled carbon nanotubes. In this invention, single-walled carbon nanotubes and multi-walled carbon nanotubes are included in a predetermined ratio from the viewpoint of easily reducing weight variation, easily improving strength, easily collecting current between negative electrode active material particles with a small amount of carbon nanotubes, and easily extending the battery life. By improving the strength with single-walled carbon nanotubes and wrapping single-walled carbon nanotubes around multi-walled carbon nanotubes, the electrode active material layer can be stabilized and weight variation can be reduced.

[0048] These single-walled carbon nanotubes and multi-walled carbon nanotubes can be used individually or in combination of two or more types.

[0049] From the viewpoint of reducing weight variation, improving strength, increasing the number of carbon nanotubes per unit volume, reducing the carbon nanotube content required to maintain electrode shape, and minimizing interference with lithium ion movement, a small average outer diameter of single-walled carbon nanotubes is preferable. For this reason, the average outer diameter of single-walled carbon nanotubes is preferably 0.43 to 5 nm, and more preferably 0.43 to 2 nm. The average outer diameter of single-walled carbon nanotubes is measured by electron microscopy (TEM) observation. For single-walled carbon nanotubes having such an average outer diameter, the average inner diameter is set according to the average outer diameter.

[0050] From the viewpoint of reducing weight variation, improving strength, increasing the number of carbon nanotubes per unit volume, reducing the carbon nanotube content required to maintain electrode shape, and minimizing interference with lithium ion movement, the average outer diameter of the multi-walled carbon nanotube is preferably 1 to 20 nm, and more preferably 3 to 15 nm. The average outer diameter of the multi-walled carbon nanotube is measured by electron microscopy (TEM) observation.

[0051] While longer single-walled carbon nanotubes tend to have sufficient strength to maintain the electrode shape and facilitate current collection between negative electrode active materials, shorter average lengths are preferable from the viewpoint of improving dispersibility and minimizing interference with lithium ion movement. However, in this invention, it is possible to use longer single-walled carbon nanotubes as well, since the electrode active material layer can be stabilized and weight variations reduced by wrapping single-walled carbon nanotubes around multi-walled carbon nanotubes while improving the strength provided by the single-walled carbon nanotubes. Therefore, the average length of the single-walled carbon nanotubes is preferably 0.5 to 200 μm, and more preferably 1 to 50 μm. The average length of the single-walled carbon nanotubes is measured by electron microscopy (SEM) observation.

[0052] In this invention, while improving the strength of single-walled carbon nanotubes, the electrode active material layer can be stabilized and weight variation reduced by wrapping single-walled carbon nanotubes around multi-walled carbon nanotubes. Therefore, from the viewpoint of improving dispersibility and not hindering lithium ion movement, a shorter average length of multi-walled carbon nanotubes is preferable. For this reason, the average length of multi-walled carbon nanotubes is preferably 0.5 to 100 μm, and more preferably 1 to 25 μm. The average length of multi-walled carbon nanotubes is measured by electron microscopy (SEM) observation.

[0053] The average aspect ratio of single-walled carbon nanotubes, defined as the ratio of the average length to the average outer diameter of the single-walled carbon nanotubes, is preferably 25 to 200,000, and more preferably 100 to 50,000, from the viewpoint of achieving sufficient strength to maintain the electrode shape with a smaller single-walled carbon nanotube content, facilitating current collection between negative electrode active materials, and being less likely to inhibit lithium ion movement, thereby facilitating uniform reactions within the battery and extending the battery life.

[0054] In this invention, while improving the strength of single-walled carbon nanotubes, the electrode active material layer can be stabilized and weight variations reduced by wrapping single-walled carbon nanotubes around multi-walled carbon nanotubes. Therefore, the average aspect ratio of the multi-walled carbon nanotubes, defined as the ratio of the average length to the average outer diameter of the multi-walled carbon nanotubes, is preferably small, preferably between 25 and 100,000, and more preferably between 100 and 25,000.

[0055] In this invention, single-walled carbon nanotubes and multi-walled carbon nanotubes can be used individually or bundled together to easily exhibit strength as a bundle, resulting in the use of single-walled carbon nanotube aggregates or multi-walled carbon nanotube aggregates. In either case, a very small amount of carbon nanotubes can be used to collect current between active material particles and maintain the shape of the electrodes. As a result, the amount of electrode constituent materials other than the electrode active material (negative electrode active material) can also be reduced. Consequently, the electrode has sufficient strength to maintain its shape, does not easily hinder the movement of lithium ions, and improves the strength provided by the single-walled carbon nanotubes. Furthermore, by wrapping single-walled carbon nanotubes around multi-walled carbon nanotubes, the electrode active material layer can be stabilized, reducing weight variations. This allows for more uniform reactions within the battery and extends the battery's lifespan.

[0056] Furthermore, having few defects in the graphene structure of carbon nanotubes, that is, having a high G / D ratio in the Raman spectrum, is considered desirable from the viewpoint of easily suppressing the reactivity between carbon nanotubes and the electrolyte. For this reason, in the present invention, the carbon nanotubes preferably have a G / D ratio of 0.5 to 200 in the Raman spectrum, and more preferably 1 to 150.

[0057] The electrode active material layer (negative electrode active material layer for lithium-ion secondary batteries) according to the first aspect of the present invention facilitates current collection between active material particles and maintenance of electrode shape using only a very small amount of carbon nanotubes, and also facilitates the reduction of the amount of negative electrode constituent materials other than the electrode active material (negative electrode active material). As a result, it is easy to obtain sufficient strength to maintain the shape of the electrode, and it is not easy to hinder the movement of lithium ions. Furthermore, while improving the strength with single-walled carbon nanotubes, the electrode active material layer can be stabilized and weight variations can be reduced by wrapping single-walled carbon nanotubes around multi-walled carbon nanotubes, thus homogenizing the reaction within the battery and making it easier to extend the battery life. For this reason, the carbon nanotube content is small. Therefore, in the electrode active material layer for lithium-ion secondary batteries according to the first aspect of the present invention, the carbon nanotube content is preferably 0.01 to 1.4 mass%, more preferably 0.1 to 1.1 mass%, and even more preferably 0.2 to 0.9 mass%. Although carbon nanotubes are also substances that inhibit the movement of lithium ions, if their concentration is around 1.4% by mass or less, they are less likely to inhibit the movement of lithium ions and tend to have sufficient strength to maintain the shape of the electrodes while keeping the reaction within the battery uniform. In the electrode active material layer for lithium-ion secondary batteries according to the first aspect of the present invention, the total amount of electrode active material (negative electrode active material), carbon nanotubes, and electrode constituent materials other than electrode active material (negative electrode constituent materials) (total amount of composition) is 100% by mass.

[0058] The electrode active material layer (negative electrode active material layer for lithium-ion secondary batteries) according to the first aspect of the present invention facilitates current collection between active material particles and maintenance of electrode shape using only a small amount of carbon nanotubes, and also facilitates the reduction of the amount of negative electrode constituent materials other than the electrode active material (negative electrode active material). As a result, it is easier to obtain sufficient strength to maintain the shape of the electrode, and it is easier to avoid hindering the movement of lithium ions. Furthermore, by improving the strength with single-walled carbon nanotubes and wrapping single-walled carbon nanotubes around multi-walled carbon nanotubes, the electrode active material layer can be stabilized and weight variations can be reduced, thus homogenizing the reaction within the battery and making it easier to extend the battery life. Therefore, it is preferable to adjust the content ratio of single-walled carbon nanotubes to multi-walled carbon nanotubes. Specifically, with the total amount of carbon nanotubes being 100% by mass, the content of single-walled carbon nanotubes is preferably 50 to 90% by mass, and more preferably 55 to 80% by mass. When using multiple single-walled carbon nanotubes, it is preferable to adjust their total amount so that it falls within the above range. Furthermore, with the total amount of carbon nanotubes being 100% by mass, the content of multi-walled carbon nanotubes is preferably 10 to 50% by mass, and more preferably 20 to 45% by mass. When using multiple multi-walled carbon nanotubes, it is preferable to adjust their total amount so that it falls within the above range.

[0059] 1-1-1-3. Electrode constituent materials other than electrode active materials and carbon nanotubes The electrode active material layer for lithium-ion secondary batteries according to the first aspect of the present invention facilitates current collection between active material particles and maintenance of electrode shape using the above-mentioned very small amount of carbon nanotubes, and also reduces the amount of electrode constituent materials other than the electrode active material (negative electrode active material). As a result, it is easy to obtain sufficient strength to maintain the shape of the electrode, and it is not easy to hinder the movement of lithium ions. Furthermore, by improving the strength with single-walled carbon nanotubes and wrapping single-walled carbon nanotubes around multi-walled carbon nanotubes, the electrode active material layer can be stabilized and weight variations can be reduced, thus homogenizing the reaction within the battery and extending the battery life.

[0060] In this invention, the term "electrode active material (negative electrode active material)" and "electrode constituent materials other than carbon nanotubes (negative electrode constituent materials)" is a general term encompassing substances that have adhesive properties with the electrode active material (negative electrode active material) and electrode current collector (negative electrode current collector) (binding agents), as well as conductive additives other than carbon nanotubes such as carbon black, and dispersants, etc., which inhibit the movement of lithium ions other than carbon nanotubes (lithium ion movement inhibiting substances).

[0061] Examples of electrode components (negative electrode components) other than the electrode active material (negative electrode active material) and carbon nanotubes in this invention include, as conductive additives, acetylene black, Ketjen black, carbon black, graphene, amorphous carbon obtained by heat treatment of organic matter, etc., and as binders, thickeners, or dispersants, fluorinated polymers (polyvinylidene fluoride resin, polytetrafluoroethylene resin, vinylidene fluoride-hexafluoropropylene copolymer, etc.), polyolefin resins (styrene-butadiene copolymer resin, ethylene vinyl alcohol copolymer resin, etc.), synthetic rubbers (styrene-butadiene rubber, acrylonitrile-butadiene rubber, ethylene propylene diene rubber, etc.), polyacrylonitrile, polyamide, polyimide, polyacrylic acid, polyacrylic acid ester, polyvinyl ether, carboxymethylcellulose, carboxymethylcellulose sodium salt, carboxymethylcellulose ammonium, polyurethane, hydroxypropylcellulose, hydroxyethylcellulose, methylcellulose, etc. Amorphous carbon materials described later can also be used as amorphous carbon. These electrode active materials (negative electrode active materials) and electrode constituent materials other than carbon nanotubes (negative electrode constituent materials) can be used individually or in combination of two or more types.

[0062] The electrode active material layer for lithium-ion secondary batteries according to the first aspect of the present invention facilitates current collection between active material particles and maintenance of electrode shape using a very small amount of carbon nanotubes, and also facilitates the reduction of the amount of electrode constituent materials other than the electrode active material (negative electrode active material). As a result, it is easier to obtain sufficient strength to maintain the shape of the electrode and less likely to hinder the movement of lithium ions, thus homogenizing the reaction within the battery and extending the battery life. Therefore, it is preferable that the electrode active material layer for lithium-ion secondary batteries according to the first aspect of the present invention does not contain electrode constituent materials other than the electrode active material (negative electrode active material) and carbon nanotubes, or if it does contain them, the amount is small. For this reason, in the electrode active material layer for lithium-ion secondary batteries according to the first aspect of the present invention, the content of electrode constituent materials other than the electrode active material (negative electrode active material) and carbon nanotubes is preferably 0 to 1.2 mass%, more preferably 0.2 to 1.1 mass%, and even more preferably 0.4 to 1.0 mass%. Furthermore, when using multiple electrode active materials (negative electrode active materials) and electrode constituent materials other than carbon nanotubes (negative electrode constituent materials), it is preferable to adjust their total amount so that it falls within the above range. Although electrode active materials (negative electrode active materials) and electrode constituent materials other than carbon nanotubes (negative electrode constituent materials) are substances that inhibit the movement of lithium ions, if their amount is around 1.2% by mass or less, they are less likely to inhibit the movement of lithium ions and tend to have sufficient strength to maintain the shape of the electrodes while keeping the reaction within the battery uniform. In the negative electrode active material layer for lithium-ion secondary batteries according to the first embodiment, the total amount of electrode active material (negative electrode active material), carbon nanotubes, and electrode constituent materials other than electrode active material (negative electrode constituent materials) (total amount of composition) is 100% by mass.

[0063] 1-1-1-4. Electrode Active Material Layer for Lithium-ion Secondary Batteries The electrode active material layer (negative electrode active material layer for lithium-ion secondary batteries) of the present invention contains the above-mentioned electrode active material (negative electrode active material), carbon nanotubes, and electrode constituent materials other than the electrode active material (negative electrode active material) and carbon nanotubes (negative electrode constituent materials).

[0064] The thickness of the electrode active material layer (negative electrode active material layer) for lithium-ion secondary batteries of the present invention is not particularly limited. However, a thinner layer is preferable in terms of ensuring lithium ion penetration and electrical conductivity, thereby facilitating a more uniform reaction. On the other hand, since the present invention aims to improve battery life by reducing factors that inhibit lithium ion movement and thus uniformizing the battery reaction, it is also possible to increase the thickness for better energy density per electrode. For this reason, the thickness of the electrode active material layer (negative electrode active material layer) for lithium-ion secondary batteries of the present invention is preferably 1 to 300 μm, more preferably 10 to 150 μm, and even more preferably 50 to 100 μm.

[0065] [1-1-2] Electrode active material layer for lithium-ion secondary battery (second embodiment) The electrode active material layer for lithium-ion secondary batteries according to the second aspect of the present invention is an electrode active material layer for lithium-ion secondary batteries containing an electrode active material and carbon nanotubes, wherein the average particle size of the electrode active material is 0.1 to 13.0 μm, and its content is 96.6 to 99.9% by mass, the carbon nanotube content is 0.01 to 1.4% by mass, and the content of electrode constituent materials other than the electrode active material and carbon nanotubes is 0 to 2.0% by mass, and is a negative electrode active material layer for lithium-ion secondary batteries. With the total amount of carbon nanotubes being 100% by mass, the content of single-walled carbon nanotubes is 50 to 90% by mass, and the content of multi-walled carbon nanotubes is 10 to 50% by mass. In the electrode active material layer for lithium-ion secondary batteries according to the second aspect of the present invention, the total amount of the electrode active material (negative electrode active material), carbon nanotubes, and electrode constituent materials other than the electrode active material (negative electrode constituent materials) (total amount of composition) is 100% by mass.

[0066] When the particle size of the electrode active material (negative electrode active material) is reduced, the number of interfaces between the electrode active material (negative electrode active material) particles increases, resulting in more points where structural collapse can occur. Therefore, conventionally, it was even more difficult to significantly reduce the amount of electrode constituent materials other than the electrode active material (negative electrode active material). In the second embodiment, by adopting the above-described configuration, even though the particle size of the electrode active material (negative electrode active material) is reduced, resulting in more interfaces between the electrode active material (negative electrode active material) particles and thus more points where structural collapse can occur, it is possible to significantly reduce the amount of electrode constituent materials other than the electrode active material (negative electrode constituent material) and still easily collect current between the electrode active material (negative electrode active material) particles and maintain the shape of the electrode using only a very small amount of carbon nanotubes, and it is easy to maintain sufficient strength to maintain the shape of the electrode. Furthermore, because the electrode active material (negative electrode active material) has a smaller particle size and a larger reaction area, the lithium ion flux per unit area is reduced, which in turn reduces the risk of lithium deposition, especially under high load conditions and long-term use. In addition, because the amount of electrode constituent materials other than the electrode active material (negative electrode active material) is significantly reduced, the lifespan characteristics are significantly improved. Moreover, by including predetermined amounts of single-walled carbon nanotubes and multi-walled carbon nanotubes, weight variation can be reduced even if the content of binders, thickeners, dispersants, etc. is reduced. In the present invention, because weight variation can be reduced, the ratio of solvent to active material does not vary much from place to place, and the electrode is not overused in areas with relatively low amounts of active material, allowing the reaction to be carried out uniformly. In other words, the electrode active material layer (negative electrode active material layer for lithium-ion secondary batteries) according to the second embodiment can be used to reduce the uneven distribution of reactions in lithium-ion secondary batteries.

[0067] 1-1-2-1. Electrode active material The electrode active material (negative electrode active material) is not particularly limited, and a material that can be used as an electrode active material (negative electrode active material) in a lithium-ion secondary battery, that is, a material capable of occluding and releasing lithium ions can be used. Examples include carbon materials such as natural graphite, artificial graphite, and amorphous carbon; metal materials capable of alloying with lithium such as Si, Al, Sn, Pb, Zn, Bi, In, Mg, Ga, Si alloys, Sn alloys, and Al alloys; SiO x (0 < x < 2), SnO x (0 < x < 2), Si, Li2TiO3, metal oxides capable of occluding and releasing lithium ions such as vanadium oxides; composite materials containing metal materials and carbon materials such as Si-C composites and Sn-C composites. Note that as the amorphous carbon, the amorphous carbon material described later can also be used. These electrode active materials (negative electrode active materials) can be used alone or in combination of two or more. Among them, when a conductive material such as a carbon material is used as the electrode active material (negative electrode active material), it also functions as a conductive aid, and it is particularly easy to reduce the content of substances that inhibit the movement of lithium ions.

[0068] The shape of the electrode active material (negative electrode active material) is not particularly limited, and various shapes such as spherical, flaky, massive, fibrous, whisker-like, and crushed can be adopted. Also, electrode active materials (negative electrode active materials) having a plurality of shapes can be used in combination. Note that the spherical shape may be a perfect sphere or an elliptical shape or the like.

[0069] Further, the average particle diameter of the electrode active material (negative electrode active material) is 0.1 to 13.0 μm, preferably 0.5 to 10.0 μm, more preferably 1.0 to 8.0 μm. If the average particle diameter of the electrode active material (negative electrode active material) is less than 0.1 μm, aggregation cannot be avoided, and instead, the flux of lithium ions per unit area increases, and the life characteristics are likely to deteriorate. On the other hand, if the average particle diameter of the electrode active material (negative electrode active material) exceeds 13.0 μm, there is room for improvement in the uniformity of the reaction particularly at low temperatures. Note that the average particle diameter of the negative electrode active material is measured by the laser diffraction / scattering method.

[0070] As for the electrode active material (negative electrode active material) described above, from the viewpoint of particularly suppressing the volume change of the electrode active material (negative electrode active material) during charging and discharging, making it easier to suppress the decrease in capacity due to volume change, and particularly improving the charge-discharge cycle characteristics, it is preferable that the volume change of the electrode active material (negative electrode active material) during charging and discharging is 50% or less, preferably 20% or less. The smaller the volume change, the better, and no lower limit is set, but if a lower limit were set, it would be 0%. This volume change value is set to 0% when there is no volume change at all, and indicates the extent to which the electrode active material (negative electrode active material) expands when fully charged compared to when fully discharged, as shown by the following formula: ((Volume when fully charged) - (Volume when fully discharged)) / (Volume when fully discharged) × 100 It is calculated by [method].

[0071] Examples of electrode active materials (negative electrode active materials) that satisfy such volume changes include carbon materials such as natural graphite, artificial graphite, and amorphous carbon; and lithium composite titanium oxide (Li2TiO3, etc.). The volume changes of these materials vary depending on the material type and charge / discharge depth, but are around 10% for graphite and a few percent for amorphous carbon. Furthermore, when using multiple electrode active materials (negative electrode active materials), it is preferable that the average volume change of the electrode active materials (negative electrode active materials) falls within the above range.

[0072] The electrode active material layer (negative electrode active material layer) for lithium-ion secondary batteries according to the second embodiment has a smaller particle size for the electrode active material (negative electrode active material), which increases the number of interfaces between the electrode active material (negative electrode active material) particles and thus increases the number of points where structural collapse may occur. However, even if the amount of electrode constituent materials other than the electrode active material (negative electrode active material) is significantly reduced, a very small amount of carbon nanotubes facilitates current collection between the electrode active material (negative electrode active material) particles and maintains the shape of the electrode, resulting in a strength that can easily maintain the shape of the electrode (negative electrode). Furthermore, because the reaction area is increased by the smaller particle size of the electrode active material (negative electrode active material), the lithium ion flux per unit area is reduced, which reduces the risk of lithium deposition, especially under high load conditions and long-term use. In addition, because the amount of electrode constituent materials other than the electrode active material (negative electrode active material) is significantly reduced, the lifespan characteristics are significantly improved. Moreover, it is easy to maintain sufficient strength to maintain the shape of the electrode while keeping the reaction within the battery uniform. Therefore, the electrode active material layer (negative electrode active material layer) for lithium-ion secondary batteries according to the second embodiment has a larger content of electrode active material (negative electrode active material) compared to the current electrode active material layer (negative electrode active material layer). For this reason, in the electrode active material layer for lithium-ion secondary batteries according to the second embodiment, the content of electrode active material (negative electrode active material) is 96.6 to 99.9% by mass, preferably 97.6 to 99.8% by mass, and more preferably 98.1 to 99.7% by mass. When using multiple electrode active materials (negative electrode active materials), it is preferable to adjust the total amount so that it falls within the above range. In the electrode active material layer for lithium-ion secondary batteries according to the second embodiment, the total amount of electrode active material (negative electrode active material), carbon nanotubes, and electrode constituent materials other than electrode active material (negative electrode constituent materials) (total amount of composition) is 100% by mass.

[0073] 1-1-2-2. Carbon nanotubes The electrode active material layer (negative electrode active material layer) for lithium-ion secondary batteries according to the second embodiment facilitates current collection between active material particles and maintenance of electrode shape due to the use of a very small amount of carbon nanotubes. As a result, the electrode active material (negative electrode active material) has a small particle size, which increases the number of interfaces between electrode active material (negative electrode active material) particles, thus increasing the number of points where structural collapse may occur. Nevertheless, it tends to have sufficient strength to maintain the shape of the electrode (negative electrode) even when the amount of electrode constituent materials other than the electrode active material (negative electrode active material) is reduced. Furthermore, because the reaction area is increased by the small particle size of the electrode active material (negative electrode active material), the lithium ion flux per unit area is reduced, which in turn reduces the risk of lithium deposition, especially under high load conditions and long-term use. In addition, because the amount of electrode constituent materials other than the electrode active material (negative electrode active material) is significantly reduced, the lifespan characteristics tend to be significantly improved. Furthermore, by including predetermined amounts of single-walled carbon nanotubes and multi-walled carbon nanotubes, weight variation can be reduced even when the content of binders, thickeners, dispersants, etc., is reduced. In this invention, because weight variation can be reduced, the ratio of solvent to active material does not vary much from place to place, and electrodes are not excessively used in areas with relatively low amounts of active material, allowing the reaction to proceed uniformly. Although carbon nanotubes are substances that inhibit the movement of lithium ions, in small amounts they do not inhibit the movement of lithium ions, meaning they tend to have enough strength to maintain the shape of the electrode (negative electrode) while keeping the reaction within the battery uniform.

[0074] The carbon nanotubes that can be used are the same as those described in 1-1-2-1 above, and single-walled carbon nanotubes and multi-walled carbon nanotubes are used in combination.

[0075] The electrode active material layer (negative electrode active material layer for lithium-ion secondary batteries) according to the second aspect of the present invention facilitates current collection between electrode active material (negative electrode active material) particles and maintains the shape of the electrode due to the use of a very small amount of carbon nanotubes. As a result, the electrode active material (negative electrode active material) has a small particle size, which increases the number of interfaces between electrode active material (negative electrode active material) particles and thus increases the number of points where structural collapse may occur. Nevertheless, it is easy to maintain sufficient strength to maintain the shape of the electrode (negative electrode) even when the amount of electrode constituent materials (negative electrode constituent materials) other than the electrode active material (negative electrode active material) is reduced, and the electrode active material (negative electrode active material) has a small particle size. As the reaction area is increased, the lithium ion flux per unit area is reduced, which in turn reduces the risk of lithium deposition, especially under high load conditions and long-term use. Furthermore, because the amount of electrode constituent materials other than the electrode active material (negative electrode active material) is significantly reduced, the lifespan characteristics are significantly improved. In addition, by improving the strength with single-walled carbon nanotubes and stabilizing the electrode active material layer by wrapping single-walled carbon nanotubes around multi-walled carbon nanotubes, weight variations can be reduced, thus homogenizing the reaction within the battery and extending the battery's lifespan. For this reason, the carbon nanotube content in the electrode active material layer for lithium-ion secondary batteries (negative electrode active material layer for lithium-ion secondary batteries) according to the second embodiment is small. For this reason, the carbon nanotube content in the electrode active material layer for lithium-ion secondary batteries according to the second embodiment is 0.01 to 1.4 mass%, preferably 0.1 to 1.1 mass%, and more preferably 0.2 to 0.9 mass%. Although carbon nanotubes are also substances that inhibit the movement of lithium ions, if their concentration is around 1.4% by mass or less, they do not significantly inhibit the movement of lithium ions, especially when combined with the small particle size of the electrode active material (negative electrode active material). Furthermore, despite the small particle size of the electrode active material (negative electrode active material), it is easy to maintain sufficient strength to keep the reaction within the battery uniform and maintain the shape of the electrode (negative electrode). In the electrode active material layer for lithium-ion secondary batteries according to the second embodiment, the total amount of the electrode active material (negative electrode active material), carbon nanotubes, and electrode constituent materials other than the electrode active material (negative electrode constituent materials) (total amount of composition) is 100% by mass.

[0076] The electrode active material layer (negative electrode active material layer for lithium-ion secondary batteries) according to the second aspect of the present invention facilitates current collection between electrode active material (negative electrode active material) particles and maintains the shape of the electrode due to the use of a very small amount of carbon nanotubes. As a result, although the number of interfaces between electrode active material (negative electrode active material) particles increases due to the small particle size of the electrode active material (negative electrode active material), thus increasing the number of points where structural collapse may occur, it is easy to maintain the shape of the electrode (negative electrode) even when the amount of electrode constituent materials (negative electrode constituent materials) other than the electrode active material (negative electrode active material) is reduced, and because the reaction area is increased by the small particle size of the electrode active material (negative electrode active material), per unit area The lithium ion flux is reduced, and in particular, the risk of lithium deposition is reduced under high load conditions and long-term use. Furthermore, the amount of electrode constituent materials other than the electrode active material (negative electrode active material) is significantly reduced, which makes it easier to significantly improve the lifespan characteristics. In addition, by improving the strength with single-walled carbon nanotubes and stabilizing the electrode active material layer by wrapping single-walled carbon nanotubes around multi-walled carbon nanotubes, weight variations can be reduced, thus homogenizing the reaction within the battery and making it easier to extend the battery life. For these reasons, it is preferable to adjust the content ratio of single-walled carbon nanotubes to multi-walled carbon nanotubes. Specifically, with the total amount of carbon nanotubes being 100% by mass, the content of single-walled carbon nanotubes is preferably 50 to 90% by mass, and more preferably 55 to 80% by mass. When using multiple single-walled carbon nanotubes, it is preferable to adjust their total amount so that it falls within the above range. Furthermore, with the total amount of carbon nanotubes being 100% by mass, the content of multi-walled carbon nanotubes is preferably 10 to 50% by mass, and more preferably 20 to 45% by mass. Furthermore, when using multiple multi-walled carbon nanotubes, it is preferable to adjust their total amount so that it falls within the above range.

[0077] 1-1-2-3. Electrode constituent materials other than electrode active materials and carbon nanotubes The electrode active material layer (negative electrode active material layer for lithium-ion secondary batteries) according to the second embodiment makes it easier to collect current between active material particles and maintain the shape of the electrode by using a very small amount of carbon nanotubes. As a result, the electrode active material (negative electrode active material) has a small particle size, which increases the number of interfaces between electrode active material (negative electrode active material) particles and thus increases the number of points where structural collapse may occur. Nevertheless, it is easy to maintain sufficient strength to maintain the shape of the electrode (negative electrode) even when the amount of electrode constituent materials other than the electrode active material (negative electrode active material) is reduced, and the electrode active material (negative electrode active material) has a small particle size. Because the reaction area is increased, the lithium ion flux per unit area is reduced, which in turn reduces the risk of lithium deposition, especially under high load conditions and long-term use. Furthermore, the amount of electrode constituent materials other than the electrode active material (negative electrode active material) is significantly reduced. In addition, the strength is improved by using single-walled carbon nanotubes, and the electrode active material layer is stabilized by wrapping single-walled carbon nanotubes around multi-walled carbon nanotubes, thereby reducing weight variation. This allows for more uniform reactions within the battery and extends the battery's lifespan.

[0078] In this invention, the electrode constituent materials (negative electrode constituent materials) and electrode constituent materials other than carbon nanotubes (negative electrode constituent materials) can be the same as those described in 1-1-1-3 above.

[0079] The electrode active material layer (negative electrode active material layer) for lithium-ion secondary batteries according to the second embodiment facilitates current collection between active material particles and maintenance of electrode shape due to the use of a very small amount of carbon nanotubes. As a result, the electrode active material (negative electrode active material) has a small particle size, which increases the number of interfaces between electrode active material (negative electrode active material) particles, thus increasing the number of points where structural collapse may occur. Nevertheless, it tends to have sufficient strength to maintain the shape of the electrode (negative electrode) even when the amount of electrode constituent materials other than the electrode active material (negative electrode active material) is reduced. Furthermore, because the reaction area is increased by reducing the particle size of the electrode active material (negative electrode active material), per unit area This reduces the lithium ion flux, which in turn reduces the risk of lithium deposition, especially under high load conditions and long-term use. Furthermore, it significantly reduces the amount of electrode constituent materials other than the electrode active material (negative electrode active material), and by improving the strength with single-walled carbon nanotubes and stabilizing the electrode active material layer by wrapping single-walled carbon nanotubes around multi-walled carbon nanotubes, weight variations can be reduced. This homogenizes the reaction within the battery and significantly improves its lifespan. For this reason, it contains either no electrode constituent materials other than the electrode active material (negative electrode active material) and carbon nanotubes, or if it does, the amount is small. Therefore, in the electrode active material layer for lithium-ion secondary batteries according to the second embodiment, the content of electrode active material (negative electrode active material) and electrode constituent materials other than carbon nanotubes (negative electrode constituent materials) is 0 to 2.0 mass%, preferably 0 to 1.2 mass%, and more preferably 0 to 1.0 mass%. When using multiple electrode active materials (negative electrode active material) and electrode constituent materials other than carbon nanotubes (negative electrode constituent materials), it is preferable to adjust the total amount so that it falls within the above range.Although the electrode active material (negative electrode active material) and electrode constituent materials other than carbon nanotubes (negative electrode constituent materials) are substances that inhibit the movement of lithium ions, if their amount is around 2.0% by mass or less, they do not inhibit the movement of lithium ions as much as the small particle size of the electrode active material (negative electrode active material). Furthermore, despite the small particle size of the electrode active material (negative electrode active material), it is easy to maintain sufficient strength to keep the reaction within the battery uniform and maintain the shape of the electrode (negative electrode). In the electrode active material layer for lithium-ion secondary batteries according to the second embodiment, the total amount of the electrode active material (negative electrode active material), carbon nanotubes, and electrode constituent materials other than the electrode active material (negative electrode active material) (total amount of composition) is 100% by mass.

[0080] 1-1-2-4. Electrode Active Material Layer for Lithium-ion Secondary Batteries The electrode active material layer (negative electrode active material layer for lithium-ion secondary batteries) of the present invention contains the above-mentioned electrode active material (negative electrode active material), carbon nanotubes, and electrode constituent materials other than the electrode active material (negative electrode active material) and carbon nanotubes (negative electrode constituent materials).

[0081] The thickness of the electrode active material layer (negative electrode active material layer) for lithium-ion secondary batteries of the present invention is not particularly limited. However, a thinner layer is preferable in terms of ensuring lithium ion penetration and electrical conductivity, thereby facilitating a more uniform reaction. On the other hand, since the present invention aims to improve battery life by reducing factors that inhibit lithium ion movement and thus uniformizing the battery reaction, it is also possible to increase the thickness for better energy density per electrode. For this reason, the thickness of the electrode active material layer (negative electrode active material layer) for lithium-ion secondary batteries of the present invention is preferably 1 to 300 μm, more preferably 10 to 150 μm, and even more preferably 50 to 100 μm.

[0082] [1-1-3] Electrode active material layer for lithium-ion secondary battery (third aspect) The electrode active material layer for lithium-ion secondary batteries according to a third aspect of the present invention is an electrode active material layer for lithium-ion secondary batteries containing an electrode active material and carbon nanotubes, wherein the content of the electrode active material is 88.6 to 99.9% by mass, the content of carbon nanotubes is 0.01 to 1.4% by mass, and the content of conductive additives other than carbon nanotubes is 0 to 10.0% by mass, and it does not contain electrode constituent materials other than the electrode active material, carbon nanotubes and conductive additives other than carbon nanotubes, and is a composition for forming a positive electrode active material layer for lithium-ion secondary batteries. Furthermore, with the total amount of carbon nanotubes being 100% by mass, the content of single-walled carbon nanotubes is 50 to 90% by mass, and the content of multi-walled carbon nanotubes is 10 to 50% by mass. In the third embodiment of the electrode active material layer for lithium-ion secondary batteries, the total amount of electrode active material (positive electrode active material), carbon nanotubes, and conductive additives other than electrode active material (positive electrode active material) and carbon nanotubes (total amount of electrode active material layer for lithium-ion secondary batteries) is 100% by mass.

[0083] By adopting this configuration, it is easier to maintain sufficient strength to preserve the shape of the electrode (positive electrode), and because the amount of lithium ion inhibiting substances is reduced, it is easier to suppress the inhibition of lithium ion movement, resulting in a more uniform battery reaction and a longer battery life. Furthermore, by including predetermined amounts of single-walled carbon nanotubes and multi-walled carbon nanotubes, weight variation can be reduced even if the content of binders, thickeners, dispersants, etc. is reduced. In the present invention, because weight variation can be reduced, the ratio of solvent to active material does not vary much from place to place, and the electrode is not excessively used in areas with relatively low amounts of active material, allowing the reaction to be carried out uniformly. In other words, the electrode active material layer for lithium-ion secondary batteries (positive electrode active material layer for lithium-ion secondary batteries) according to the third embodiment can be used to reduce the uneven distribution of reactions in lithium-ion secondary batteries.

[0084] 1-1-3-1. Electrode active material The electrode active material (positive electrode active material) is not particularly limited, and materials that can be used as electrode active materials (positive electrode active materials) in lithium-ion secondary batteries, that is, materials capable of intercalating and releasing lithium ions can be used. For example, lithium transition metal composite oxides having an α-NaFeO2-type crystal structure, lithium transition metal oxides having a spinel-type crystal structure, polyanion compounds, chalcogen compounds, sulfur, etc. can be mentioned. As the lithium transition metal composite oxide having an α-NaFeO2-type crystal structure, for example, Li[Li x1 Ni γ1 Mn β1 Co (1-x1-γ1-β1) O2 (0 ≦ x1 < 0.5, 0 ≦ γ1 ≦ 1, 0 ≦ β1 ≦ 1, 0 ≦ γ1 + β1 ≦ 1), Li[Li x2 Ni γ2 Co β2 Al (1-x2-γ2-β2) O2 (0 ≦ x2 < 0.5, 0 ≦ γ2 ≦ 1, 0 ≦ β2 ≦ 1, 0 ≦ γ2 + β2 ≦ 1), etc. can be mentioned. As the lithium transition metal oxide having a spinel-type crystal structure, Li x3 Mn2O4 (0.9 ≦ x3 < 1.5), Li x4 Ni γ4 Mn (2-γ4) O4 (0.9 ≦ x4 < 1.5, 0 ≦ γ4 ≦ 2), etc. can be mentioned. As the polyanion compound, LiFePO4, LiMnPO4, LiNiPO4, LiCoPO4, Li3V2(PO4)3, Li2MnSiO4, Li2CoPO4F, etc. can be mentioned. As the chalcogen compound, titanium disulfide, molybdenum disulfide, molybdenum dioxide, etc. can be mentioned. Atoms or polyanions in these materials may be partially substituted with atoms or anion species composed of other elements. These electrode active materials (positive electrode active materials) can be used alone or in combination of two or more. Among these electrode active materials (positive electrode active materials), from the viewpoint of high energy density, the above lithium transition metal composite oxide is preferable, and from the viewpoint of high safety, the polyanion compound is preferable.

[0085] The particle form of the electrode active material (positive electrode active material) is not particularly limited, and various forms such as secondary particles and single particles can be used. The shape is also not particularly limited, and various forms such as spherical, flaky, lumpy, fibrous, whisker-like, and fragmented can be used. Furthermore, positive electrode active materials of multiple shapes can be used in combination. Note that "spherical" can refer to a perfect sphere, an elliptical shape, or other shapes.

[0086] Furthermore, while the particle size of the electrode active material (positive electrode active material) is not particularly limited, a small amount of carbon nanotubes facilitates current collection between the electrode active material (positive electrode active material) particles, improves strength with single-walled carbon nanotubes, and stabilizes the electrode active material layer by wrapping single-walled carbon nanotubes around multi-walled carbon nanotubes, thereby reducing weight variation. This makes it easier to maintain uniformity of the reaction within the battery and maintain the shape of the electrodes, thus extending the battery's lifespan. From this viewpoint, an average particle size of 0.1 to 25 μm is preferred, and 1 to 20 μm is more preferred. In addition, considering the homogenization of the reaction at low temperatures, the average particle size of the electrode active material (positive electrode active material) can be set to 0.1 to 13.0 μm, preferably 0.5 to 10.0 μm, and more preferably 1.0 to 8.0 μm. The average particle size of the electrode active material (positive electrode active material) is measured by laser diffraction / scattering.

[0087] The electrode active material layer (positive electrode active material layer) for lithium-ion secondary batteries according to the third embodiment makes it easier to collect current between active material particles and maintain the shape of the electrode (positive electrode) using a very small amount of carbon nanotubes. As a result, it does not contain electrode constituent materials (positive electrode constituent materials) other than conductive additives, and the amount of electrode constituent materials (positive electrode constituent materials) other than the electrode active material (positive electrode active material) can also be reduced. As a result, it is easier to have sufficient strength to maintain the shape of the electrode (positive electrode), and it is less likely to hinder the movement of lithium ions. Furthermore, by improving the strength with single-walled carbon nanotubes and wrapping single-walled carbon nanotubes around multi-walled carbon nanotubes, the electrode active material layer can be stabilized and weight variations can be reduced. This makes it easier to homogenize the reaction in the battery and extend the battery life, and therefore the electrode active material (positive electrode active material) content is larger compared to the current electrode active material layer (positive electrode active material layer). Therefore, in the electrode active material layer for lithium-ion secondary batteries according to the third embodiment, the content of the electrode active material (positive electrode active material) is 96.0 to 99.9% by mass, preferably 97.0 to 99.8% by mass, and more preferably 98.1 to 99.7% by mass. When using multiple electrode active materials (positive electrode active materials), it is preferable to adjust the total amount so that it falls within the above range. In the positive electrode active material layer for lithium-ion secondary batteries according to the third embodiment, the total amount of the electrode active material (positive electrode active material), carbon nanotubes, and conductive additives other than carbon nanotubes (total amount of composition) is 100% by mass.

[0088] 1-1-3-2. Carbon nanotubes The electrode active material layer (positive electrode active material layer) for lithium-ion secondary batteries of the present invention facilitates current collection between active material particles and maintenance of the electrode (positive electrode) shape using only a very small amount of carbon nanotubes. As a result, it does not contain electrode constituent materials (positive electrode constituent materials) other than conductive additives, thus reducing the amount of electrode constituent materials other than the electrode active material (positive electrode active material). Consequently, it is easy to achieve sufficient strength to maintain the shape of the electrode (positive electrode), and it is less likely to hinder the movement of lithium ions. Furthermore, by improving the strength with single-walled carbon nanotubes and wrapping single-walled carbon nanotubes around multi-walled carbon nanotubes, the electrode active material layer can be stabilized and weight variations can be reduced, making it easier to homogenize the reaction within the battery and extend the battery life. Although carbon nanotubes are substances that hinder the movement of lithium ions, in small amounts they do not hinder the movement of lithium ions, meaning that the reaction within the battery can be kept uniform, and it is easy to achieve sufficient strength to maintain the shape of the electrode (positive electrode).

[0089] The carbon nanotubes that can be used are the same as those described in 1-1-2-1 above, and single-walled carbon nanotubes and multi-walled carbon nanotubes are used in combination.

[0090] The electrode active material layer (positive electrode active material layer) for lithium-ion secondary batteries according to the third embodiment makes it easier to collect current between electrode active material (positive electrode active material) particles and maintain the shape of the electrode (positive electrode) using a very small amount of carbon nanotubes. As a result, it does not contain electrode constituent materials (positive electrode constituent materials) other than conductive additives, and the amount of electrode constituent materials (positive electrode constituent materials) other than the electrode active material (positive electrode active material) can also be reduced. As a result, it is easy to have sufficient strength to maintain the shape of the electrode (positive electrode), and it is not easy to hinder the movement of lithium ions. Furthermore, while improving the strength with single-walled carbon nanotubes, the electrode active material layer can be stabilized by wrapping single-walled carbon nanotubes around multi-walled carbon nanotubes, thereby reducing weight variation. This makes it easier to homogenize the reaction in the battery and extend the battery life, so the carbon nanotube content is small. Therefore, in the electrode active material layer for lithium-ion secondary batteries according to the third embodiment, the carbon nanotube content is 0.01 to 1.4% by mass, preferably 0.1 to 1.1% by mass, and more preferably 0.2 to 0.9% by mass. Although carbon nanotubes are substances that inhibit the movement of lithium ions, if the content is around 1.4% by mass or less, they do not easily inhibit the movement of lithium ions and tend to have sufficient strength to maintain the shape of the electrode (positive electrode) while keeping the reaction within the battery uniform. In the electrode active material layer for lithium-ion secondary batteries according to the third embodiment, the total amount of the electrode active material (positive electrode active material), carbon nanotubes, and conductive additives other than carbon nanotubes (total amount of composition) is 100% by mass.

[0091] The electrode active material layer (negative electrode active material layer) for lithium-ion secondary batteries according to the third aspect of the present invention facilitates current collection between electrode active material (positive electrode active material) particles and maintenance of the electrode (positive electrode) shape using a very small amount of carbon nanotubes. As a result, it does not contain electrode constituent materials (positive electrode constituent materials) other than conductive additives, and the amount of electrode constituent materials (positive electrode constituent materials) other than the electrode active material (positive electrode active material) can also be reduced. As a result, it is easier to obtain sufficient strength to maintain the shape of the electrode (positive electrode), and it is less likely to hinder the movement of lithium ions. Furthermore, by improving the strength with single-walled carbon nanotubes and wrapping single-walled carbon nanotubes around multi-walled carbon nanotubes, the electrode active material layer can be stabilized and weight variations can be reduced. Therefore, it is easier to homogenize the reaction in the battery and extend the battery life. For this reason, it is preferable to adjust the content ratio of single-walled carbon nanotubes to multi-walled carbon nanotubes. Specifically, with the total amount of carbon nanotubes being 100% by mass, the content of single-walled carbon nanotubes is preferably 50 to 90% by mass, and more preferably 55 to 80% by mass. Furthermore, when using multiple single-walled carbon nanotubes, it is preferable to adjust their total amount so that it falls within the above range. Also, with the total amount of carbon nanotubes being 100% by mass, the content of multi-walled carbon nanotubes is preferably 10-50% by mass, and more preferably 20-45% by mass. Furthermore, when using multiple multi-walled carbon nanotubes, it is preferable to adjust their total amount so that it falls within the above range.

[0092] 1-1-3-3. Conductive additives other than carbon nanotubes The electrode active material layer (positive electrode active material layer) for lithium-ion secondary batteries according to the third embodiment facilitates current collection between electrode active materials (positive electrode active materials) and maintenance of the electrode (positive electrode) shape using a very small amount of carbon nanotubes. As a result, it does not contain electrode constituent materials (positive electrode constituent materials) other than conductive additives, and the amount of electrode constituent materials (positive electrode constituent materials) other than the electrode active material (positive electrode active material) can also be reduced. Consequently, it is easier to achieve sufficient strength to maintain the shape of the electrode (positive electrode), and it is less likely to hinder the movement of lithium ions. Furthermore, by improving the strength with single-walled carbon nanotubes and wrapping single-walled carbon nanotubes around multi-walled carbon nanotubes, the electrode active material layer can be stabilized and weight variations can be reduced, making it easier to homogenize the reaction within the battery and extend the battery life.

[0093] However, in the electrode active material layer for lithium-ion secondary batteries (positive electrode active material layer for lithium-ion secondary batteries) according to the third embodiment, depending on the particle morphology, particle size, particle shape, and electronic conductivity of the electrode active material (positive electrode active material), it is also possible to include a certain amount of conductive additive in addition to a very small amount of carbon nanotubes, from the viewpoint of maintaining current collection between the particles of the electrode active material (positive electrode active material). For example, when using a lithium transition metal composite oxide, which has a particle morphology of secondary particles, as the electrode active material (positive electrode active material), it is preferable to include a certain amount of conductive additive in addition to carbon nanotubes.

[0094] Examples of conductive additives other than carbon nanotubes in the electrode active material layer (positive electrode active material layer for lithium-ion secondary batteries) according to this third embodiment include carbon black such as acetylene black, furnace black, and Ketjen black; flake graphite; graphene; and amorphous carbon obtained by heat treatment of organic matter. These conductive additives other than carbon nanotubes can be used alone or in combination of two or more. Among these, carbon black is preferred from the viewpoint of not hindering lithium ion movement, stabilizing the electrode active material layer and reducing weight variation, homogenizing the reaction within the battery, and extending the battery life.

[0095] In the electrode active material layer for lithium-ion secondary batteries according to the third embodiment, the content of conductive additives other than carbon nanotubes is 0 to 3.5% by mass, preferably 0.4 to 2.5% by mass, and more preferably 0.8 to 1.5% by mass, from the viewpoint of making it easier to homogenize the reaction in the battery and extend the battery life, as it does not easily hinder the movement of lithium ions, improves the strength of single-walled carbon nanotubes, and stabilizes the electrode active material layer by wrapping single-walled carbon nanotubes around multi-walled carbon nanotubes, thereby reducing weight variation. When multiple conductive additives other than carbon nanotubes are used, it is preferable to adjust their total amount so that it falls within the above range. In the electrode active material layer for lithium-ion secondary batteries according to the third embodiment, the total amount of electrode active material (positive electrode active material), carbon nanotubes, and conductive additives other than carbon nanotubes (total amount of electrode active material layer) is 100% by mass.

[0096] 1-1-3-4. Electrode constituent materials excluding electrode active materials, carbon nanotubes, and conductive additives other than carbon nanotubes The electrode active material layer (positive electrode active material layer) for lithium-ion secondary batteries according to the third embodiment facilitates current collection between electrode active material (positive electrode active material) particles and maintenance of the electrode (positive electrode) shape using a very small amount of carbon nanotubes. As a result, it does not contain electrode constituent materials (positive electrode constituent materials) other than the electrode active material (positive electrode active material) and conductive additives, thus reducing the amount of electrode constituent materials (positive electrode constituent materials) other than the electrode active material (positive electrode active material). Consequently, it is easier to achieve sufficient strength to maintain the shape of the electrode (positive electrode), and it is less likely to hinder the movement of lithium ions. Furthermore, by improving the strength with single-walled carbon nanotubes and wrapping single-walled carbon nanotubes around multi-walled carbon nanotubes, the electrode active material layer can be stabilized and weight variations can be reduced, making it easier to homogenize the reaction within the battery and extend the battery life.

[0097] Conventional electrode active material layers for lithium-ion secondary batteries (positive electrode active material layers for lithium-ion secondary batteries) typically contain, in addition to the electrode active material (positive electrode active material) and conductive additives, some substances that inhibit the movement of lithium ions (lithium ion movement inhibitors), such as substances that provide adhesion to the electrode active material (positive electrode active material) and electrode current collector (positive electrode current collector) (binding agents), as well as thickeners and dispersants.

[0098] In contrast, the electrode active material layer (positive electrode active material layer) for lithium-ion secondary batteries according to the third embodiment makes it easier to collect current between electrode active material (positive electrode active material) particles and maintain the shape of the electrode (positive electrode) using a very small amount of carbon nanotubes. Furthermore, by improving the strength with single-walled carbon nanotubes and stabilizing the electrode active material layer by wrapping single-walled carbon nanotubes around multi-walled carbon nanotubes, weight variations can be reduced. As a result, it is easier to homogenize the reaction within the battery and extend the battery life. Consequently, as described above, it is possible to have a configuration that does not contain electrode constituent materials (positive electrode constituent materials) other than conductive additives.

[0099] Other electrode components (positive electrode components) that are not included in the electrode active material layer (positive electrode active material layer for lithium-ion secondary batteries) according to the third embodiment include, for example, fluorine-based polymers (polyvinylidene fluoride resin, polytetrafluoroethylene resin, vinylidene fluoride-hexafluoropropylene copolymer, etc.), polyolefin resins (styrene-butadiene copolymer resin, ethylene vinyl alcohol copolymer resin, etc.), synthetic rubbers (styrene-butadiene rubber, acrylonitrile-butadiene rubber, ethylene propylene diene rubber, etc.), polyacrylonitrile, polyamide, polyimide, polyacrylic acid, polyacrylic acid ester, polyvinyl ether, carboxymethylcellulose, carboxymethylcellulose sodium salt, carboxymethylcellulose ammonium, polyurethane, hydroxypropylcellulose, hydroxyethylcellulose, methylcellulose, etc., as binders, thickeners, or dispersants.

[0100] 1-1-3-5. Electrode Active Material Layer for Lithium-ion Secondary Batteries The electrode active material layer for lithium-ion secondary batteries (positive electrode active material layer for lithium-ion secondary batteries) of the present invention contains the above-mentioned electrode active material (positive electrode active material), carbon nanotubes, and conductive additives other than carbon nanotubes, but does not contain electrode constituent materials other than the electrode active material (positive electrode active material), carbon nanotubes, and conductive additives other than carbon nanotubes.

[0101] The thickness of the electrode active material layer (positive electrode active material layer for lithium-ion secondary batteries) of the present invention is not particularly limited. However, a thinner layer is preferable in that it ensures lithium ion penetration and electrical conductivity, making it easier to homogenize the reaction. On the other hand, since the present invention aims to improve battery life by reducing factors that inhibit lithium ion movement and homogenizing the battery reaction, it is also possible to increase the thickness in order to increase the energy density per electrode. For this reason, the thickness of the electrode active material layer (positive electrode active material layer for lithium-ion secondary batteries) of the present invention is preferably 1 to 300 μm, more preferably 10 to 150 μm, and even more preferably 50 to 100 μm.

[0102] [1-1-4] Electrode active material layer for lithium-ion secondary battery (fourth aspect) The electrode active material layer for a lithium-ion secondary battery according to the fourth embodiment is an electrode active material layer for a lithium-ion secondary battery containing an electrode active material and carbon nanotubes, wherein the electrode active material contains an amorphous carbon material, and the carbon nanotube content is 0.01 to 0.8 mass% of the total amount of the composition, and is a negative electrode active material layer for a lithium-ion secondary battery. Furthermore, the single-walled carbon nanotube content is 50 to 90 mass% of the total amount of carbon nanotubes, and the multi-walled carbon nanotube content is 10 to 50 mass% of the total amount of carbon nanotubes.

[0103] Amorphous carbon materials have low electronic conductivity compared to graphite materials, so in order to maintain uniform reactions within the battery, it is necessary to form uniform electron conduction paths. On the other hand, when using conductive additives with a small aspect ratio, such as carbon black, the amount of conductive additive required to form the above electron conduction paths increases, which may inhibit the movement of lithium ions. On the other hand, carbon nanotubes with a high aspect ratio can form uniform electron conduction paths in small amounts. Thus, by using amorphous carbon materials and carbon nanotubes in combination, it is possible to suppress the inhibition of lithium ion movement while forming uniform electron conduction paths, thereby making it easier to maintain uniform reactions within the battery. Furthermore, although carbon nanotubes are substances that can inhibit the movement of lithium ions, in this invention the carbon nanotube content is very small, making it easier to maintain uniform reactions within the battery, and the synergistic effect with amorphous carbon materials makes it easier to extend the battery life. In addition, by including predetermined amounts of single-walled carbon nanotubes and multi-walled carbon nanotubes, weight variation can be reduced even when the content of binders, thickeners, dispersants, etc. is reduced. In the present invention, weight variation can be reduced, so the ratio of solvent to active material does not differ much from place to place, and the electrode is not excessively used in areas with relatively low amounts of active material, allowing the reaction to be carried out uniformly. In other words, the electrode active material layer for lithium-ion secondary batteries (negative electrode active material layer for lithium-ion secondary batteries) according to the fourth embodiment can be used to reduce the uneven distribution of reactions in lithium-ion secondary batteries.

[0104] 1-1-4-1. Electrode active material As an amorphous carbon material used as an electrode active material (negative electrode active material), amorphous layered carbon materials are preferred from the viewpoint of easily homogenizing the reaction within the battery and extending the battery's lifespan.

[0105] The interlayer distance of the (002) plane of amorphous layered carbon material is preferably 0.35 nm or greater, and more preferably 0.36 nm or greater, from the viewpoint of facilitating homogenization of reactions within the battery and extending the battery life. There is no particular upper limit to the interlayer distance of the (002) plane of amorphous layered carbon material, but it is usually 0.40 nm. The interlayer distance of amorphous layered carbon material is measured by X-ray diffraction.

[0106] The average particle size of the amorphous layered carbon material is preferably 1 to 10 μm, and more preferably 3 to 8 μm, from the viewpoint of easily homogenizing the reaction within the battery and extending the battery life. The average particle size of the amorphous layered carbon material is measured by laser diffraction and scattering.

[0107] Examples of amorphous carbon materials that satisfy the above conditions include hard carbon (carbon material that is difficult to graphitize), soft carbon (carbon material that is easily graphitized), and mesophase pitch carbide. These amorphous carbon materials can be used individually or in combination of two or more types. Among these, hard carbon is preferred from the viewpoint of easily homogenizing the reaction in the battery and extending the battery life. In this invention, hard carbon means an amorphous carbon material in which the interlayer distance of the (002) plane does not become less than 0.34 nm when fired at 3000°C. Soft carbon means an amorphous carbon material in which the interlayer distance of the (002) plane becomes less than 0.34 nm when fired at 3000°C.

[0108] There are no particular restrictions on the shape of the electrode active material (negative electrode active material), and various shapes such as spherical, flaky, lumpy, fibrous, whisker-like, and crushed can be used. Furthermore, a combination of electrode active materials (negative electrode active materials) of multiple shapes can be used. Note that "spherical" can refer to a perfect sphere, an elliptical shape, or other shapes.

[0109] The electrode active material layer (negative electrode active material layer for lithium-ion secondary batteries) according to the fourth embodiment uses an amorphous carbon material as the electrode active material (negative electrode active material) and uses a very small amount of carbon nanotubes to suppress the inhibition of lithium ion movement, form a uniform electron conduction path, improve strength with single-walled carbon nanotubes, and stabilize the electrode active material layer by wrapping single-walled carbon nanotubes around multi-walled carbon nanotubes, thereby reducing weight variation. This makes it easier to homogenize the reaction within the battery and extend the battery life. In the present invention, the content of the electrode active material (negative electrode active material) is preferably 96.0 to 99.9% by mass, more preferably 97.0 to 99.8% by mass, and even more preferably 98.1 to 99.7% by mass. When using multiple electrode active materials (negative electrode active materials), it is preferable to adjust the total amount so that it falls within the above range. In the fourth embodiment of the electrode active material layer for lithium-ion secondary batteries (negative electrode active material layer for lithium-ion secondary batteries), the total amount (total amount of composition) of the electrode active material (negative electrode active material), carbon nanotubes, conductive additives other than carbon nanotubes, and electrode constituent materials (negative electrode constituent materials) (other electrode constituent materials (negative electrode constituent materials)) excluding the electrode active material (negative electrode active material), carbon nanotubes, and conductive additives other than carbon nanotubes is 100% by mass.

[0110] 1-1-4-2. Carbon nanotubes The electrode active material layer (negative electrode active material layer) for lithium-ion secondary batteries according to the fourth embodiment uses an amorphous carbon material as the electrode active material (negative electrode active material) and uses a very small amount of carbon nanotubes to suppress the inhibition of lithium ion movement, form a uniform electron conduction path, improve strength with single-walled carbon nanotubes, and stabilize the electrode active material layer by wrapping single-walled carbon nanotubes around multi-walled carbon nanotubes, thereby reducing weight variation. This makes it easier to homogenize the reaction within the battery and extend the battery life. Although carbon nanotubes are also a substance that inhibits lithium ion movement, in small amounts they do not inhibit lithium ion movement, meaning that it is easier to homogenize the reaction within the battery and extend the battery life.

[0111] The carbon nanotubes that can be used are the same as those described in 1-1-2-1 above, and single-walled carbon nanotubes and multi-walled carbon nanotubes are used in combination.

[0112] The electrode active material layer (negative electrode active material layer) for lithium-ion secondary batteries according to the fourth embodiment uses an amorphous carbon material as the electrode active material (negative electrode active material) and uses a very small amount of carbon nanotubes to suppress the inhibition of lithium ion movement, form a uniform electron conduction path, improve strength with single-walled carbon nanotubes, and stabilize the electrode active material layer by wrapping single-walled carbon nanotubes around multi-walled carbon nanotubes, thereby reducing weight variation. This makes it easier to homogenize the reaction within the battery and extend the battery life, so the carbon nanotube content is small. For this reason, in the present invention, the carbon nanotube content is 0.01 to 0.8 mass%, preferably 0.02 to 0.7 mass%, and more preferably 0.05 to 0.6 mass%. Although carbon nanotubes are also substances that inhibit lithium ion movement, if the amount is around 0.8 mass% or less, it is less likely to inhibit lithium ion movement and easier to maintain a uniform reaction within the battery. In the fourth embodiment of the electrode active material layer for lithium-ion secondary batteries (negative electrode active material layer for lithium-ion secondary batteries), the total amount (total amount of composition) of the electrode active material (negative electrode active material), carbon nanotubes, conductive additives other than carbon nanotubes, and electrode constituent materials (negative electrode constituent materials) (other electrode constituent materials (negative electrode constituent materials)) excluding the electrode active material (negative electrode active material), carbon nanotubes, and conductive additives other than carbon nanotubes is 100% by mass.

[0113] The electrode active material layer (negative electrode active material layer for lithium-ion secondary batteries) according to the fourth aspect of the present invention uses an amorphous carbon material as the electrode active material (negative electrode active material) and uses a very small amount of carbon nanotubes to suppress the inhibition of lithium ion movement, form a uniform electron conduction path, improve the strength of single-walled carbon nanotubes, and stabilize the electrode active material layer by wrapping single-walled carbon nanotubes around multi-walled carbon nanotubes, thereby reducing weight variation. This makes it easier to homogenize the reaction within the battery and extend the battery life, so it is preferable to adjust the content ratio of single-walled carbon nanotubes to multi-walled carbon nanotubes. Specifically, with the total amount of carbon nanotubes being 100% by mass, the content of single-walled carbon nanotubes is preferably 50 to 90% by mass, and more preferably 55 to 80% by mass. When using multiple single-walled carbon nanotubes, it is preferable to adjust their total amount so that it falls within the above range. Furthermore, with the total amount of carbon nanotubes being 100% by mass, the content of multi-walled carbon nanotubes is preferably 10 to 50% by mass, and more preferably 20 to 45% by mass. When using multiple multi-walled carbon nanotubes, it is preferable to adjust their total amount so that it falls within the above range.

[0114] 1-1-4-3. Conductive additives other than carbon nanotubes The electrode active material layer (negative electrode active material layer for lithium-ion secondary batteries) according to the fourth embodiment uses an amorphous carbon material as the electrode active material (negative electrode active material) and uses a very small amount of carbon nanotubes to suppress the obstruction of lithium ion movement and form a uniform electron conduction path. Furthermore, by improving the strength with single-walled carbon nanotubes and stabilizing the electrode active material layer by wrapping single-walled carbon nanotubes around multi-walled carbon nanotubes, weight variations can be reduced, making it easier to homogenize the reaction within the battery and extend the battery life.

[0115] However, in the electrode active material layer for lithium-ion secondary batteries (negative electrode active material layer for lithium-ion secondary batteries) according to the fourth embodiment, depending on the particle morphology, particle size, particle shape, and electronic conductivity of the amorphous carbon material, it is possible to include a certain amount of conductive additive in addition to a very small amount of carbon nanotubes, from the viewpoint of maintaining current collection between the particles of the electrode active material (negative electrode active material). For example, when using an amorphous carbon material with spherical particle shape as the electrode active material (negative electrode active material), it is preferable to include a certain amount of conductive additive in addition to carbon nanotubes.

[0116] Other conductive additives that can be used besides carbon nanotubes are the same as those described in 1-1-3-3 above.

[0117] In the present invention, when a conductive additive other than carbon nanotubes is included, the content of the conductive additive other than carbon nanotubes is preferably 0.1 to 3.5% by mass, more preferably 0.2 to 2.5% by mass, and even more preferably 0.3 to 1.5% by mass, from the viewpoint of easily homogenizing the reaction in the battery and easily extending the battery life. When multiple conductive additives other than carbon nanotubes are used, it is preferable to adjust the total amount so that it falls within the above range. In the electrode active material layer for lithium-ion secondary batteries (negative electrode active material layer for lithium-ion secondary batteries) according to the fourth embodiment, the total amount (total amount of composition) of the electrode active material (negative electrode active material), carbon nanotubes, conductive additives other than carbon nanotubes, and electrode constituent materials (negative electrode constituent materials) (other electrode constituent materials (negative electrode constituent materials)) excluding the electrode active material (negative electrode active material), carbon nanotubes, and conductive additives other than carbon nanotubes is 100% by mass.

[0118] Furthermore, for similar reasons, with the total amount of carbon nanotubes and conductive additives other than carbon nanotubes being 100% by mass, the carbon nanotube content is preferably 0.1 to 100.0% by mass, more preferably 0.5 to 60% by mass, and even more preferably 1.0 to 45.0% by mass. When using multiple conductive additives other than carbon nanotubes, it is preferable to adjust their total amount so that it falls within the above range.

[0119] 1-1-4-4. Electrode constituent materials (other electrode constituent materials) excluding electrode active materials, carbon nanotubes, and conductive additives other than carbon nanotubes. The electrode active material layer (negative electrode active material layer for lithium-ion secondary batteries) according to the fourth embodiment uses an amorphous carbon material as the electrode active material (negative electrode active material) and uses a very small amount of carbon nanotubes to suppress the obstruction of lithium ion movement and form a uniform electron conduction path. Furthermore, by improving the strength with single-walled carbon nanotubes and stabilizing the electrode active material layer by wrapping single-walled carbon nanotubes around multi-walled carbon nanotubes, weight variations can be reduced, making it easier to homogenize the reaction within the battery and extend the battery life.

[0120] In this invention, the term "electrode constituent materials (negative electrode constituent materials)" (other electrode constituent materials (negative electrode constituent materials)), excluding the electrode active material (negative electrode active material), carbon nanotubes, and conductive additives other than carbon nanotubes, is a general term for substances that inhibit the movement of lithium ions (lithium ion movement inhibiting substances), excluding carbon nanotubes and conductive additives other than carbon nanotubes, such as substances that have adhesive properties with the electrode active material (negative electrode active material) and electrode current collectors (negative electrode current collectors) (binding agents), dispersants, etc.

[0121] The electrode components (negative electrode components) (other electrode components (negative electrode components)), excluding the electrode active material (negative electrode active material), carbon nanotubes, and conductive additives other than carbon nanotubes, can be the same as those described in 1-1-3-4 above. The electrode components (negative electrode active material), carbon nanotubes, and conductive additives other than carbon nanotubes (negative electrode components) (other electrode components (negative electrode components)), excluding the electrode active material (negative electrode active material), carbon nanotubes, and conductive additives other than carbon nanotubes, can be used individually or in combination of two or more types.

[0122] The electrode active material layer (negative electrode active material layer) for lithium-ion secondary batteries according to the fourth embodiment uses an amorphous carbon material as the electrode active material (negative electrode active material) and uses a very small amount of carbon nanotubes to suppress the inhibition of lithium ion movement, form a uniform electron conduction path, improve strength with single-walled carbon nanotubes, and stabilize the electrode active material layer by wrapping single-walled carbon nanotubes around multi-walled carbon nanotubes, thereby reducing weight variation. This makes it easier to homogenize the reaction within the battery and extend the battery life. From this viewpoint, it is preferable that the content of electrode constituent materials (negative electrode constituent materials) (other electrode constituent materials (negative electrode constituent materials)), excluding the electrode active material (negative electrode active material), carbon nanotubes, and conductive additives other than carbon nanotubes, be small. On the other hand, from the viewpoint of easily having enough strength to maintain the shape of the electrode, it is preferable that the content be above a certain level. Therefore, in the electrode active material layer (negative electrode active material layer for lithium-ion secondary batteries) according to the fourth embodiment, the content of electrode constituent materials (negative electrode constituent materials) (other electrode constituent materials (negative electrode constituent materials)), excluding the electrode active material (negative electrode active material), carbon nanotubes, and conductive additives other than carbon nanotubes, is preferably 0.1 to 10.0 mass%, more preferably 1.0 to 8.0 mass%, and even more preferably 2.0 to 6.0 mass%. When multiple electrode constituent materials (negative electrode constituent materials) (other electrode constituent materials (negative electrode constituent materials)), excluding the electrode active material (negative electrode active material), carbon nanotubes, and conductive additives other than carbon nanotubes, are used, it is preferable to adjust the total amount so that it falls within the above range. In the fourth embodiment of the electrode active material layer for lithium-ion secondary batteries (negative electrode active material layer for lithium-ion secondary batteries), the total amount (total amount of composition) of the electrode active material (negative electrode active material), carbon nanotubes, conductive additives other than carbon nanotubes, and electrode constituent materials (negative electrode constituent materials) (other electrode constituent materials (negative electrode constituent materials)) excluding the electrode active material (negative electrode active material), carbon nanotubes, and conductive additives other than carbon nanotubes is 100% by mass.

[0123] 1-1-4-5. Electrode Active Material Layer for Lithium-ion Secondary Batteries The electrode active material layer for lithium-ion secondary batteries (negative electrode active material layer for lithium-ion secondary batteries) of the present invention contains the above-mentioned electrode active material and carbon nanotubes, and optionally contains conductive additives other than carbon nanotubes and electrode constituent materials (negative electrode constituent materials) (other electrode constituent materials (negative electrode constituent materials)) excluding the electrode active material (negative electrode active material), carbon nanotubes and conductive additives other than carbon nanotubes.

[0124] The thickness of the electrode active material layer (negative electrode active material layer) for lithium-ion secondary batteries of the present invention is not particularly limited. However, a thinner layer is preferable in terms of ensuring lithium ion penetration and electrical conductivity, thereby facilitating a more uniform reaction. On the other hand, since the present invention aims to improve battery life by reducing factors that inhibit lithium ion movement and thus uniformizing the battery reaction, it is also possible to increase the thickness for better energy density per electrode. For this reason, the thickness of the electrode active material layer (negative electrode active material layer) for lithium-ion secondary batteries of the present invention is preferably 1 to 300 μm, more preferably 10 to 150 μm, and even more preferably 50 to 100 μm.

[0125] (1-2) Electrode current collector The electrode active material layer for lithium-ion secondary batteries (negative electrode active material layer and positive electrode active material layer for lithium-ion secondary batteries) described above can be formed on a current collector for lithium-ion secondary batteries (negative electrode current collector and positive electrode current collector for lithium-ion secondary batteries) to form an electrode for lithium-ion secondary batteries (negative electrode and positive electrode for lithium-ion secondary batteries).

[0126] The electrode current collectors (negative electrode current collector and positive electrode current collector) are not particularly limited, and current collectors commonly used in lithium-ion secondary batteries can be used.

[0127] The negative electrode current collector is preferably made of a material that is electrochemically stable at the potential used and has high electronic conductivity, such as copper, stainless steel, nickel, or carbon material. This negative electrode current collector can be in the form of a foil, mesh, or other similar component.

[0128] The positive electrode current collector is preferably made of a material that is electrochemically stable at the potential used and has high electronic conductivity, such as aluminum, stainless steel, or carbon material. This positive electrode current collector can be in the form of a foil, mesh, or other similar component.

[0129] (1-3) Undercoat layer The electrode active material layer for lithium-ion secondary batteries (negative electrode active material layer and positive electrode active material layer for lithium-ion secondary batteries) of the present invention described above can be formed directly on the electrode current collector for lithium-ion secondary batteries (negative electrode current collector and positive electrode current collector for lithium-ion secondary batteries), but it is preferable to form it on the electrode current collector for lithium-ion secondary batteries (negative electrode current collector and positive electrode current collector for lithium-ion secondary batteries) via an undercoat layer to form the electrode for lithium-ion secondary batteries (negative electrode and positive electrode for lithium-ion secondary batteries).

[0130] In the present invention, the undercoat layer, by being present between the electrode current collector and the electrode active material layer, does not hinder the movement of lithium ions even if the electrode active material layer contains little to no electrode constituent materials such as binders, thickeners, and dispersants. Furthermore, it improves the strength of the single-walled carbon nanotubes and stabilizes the electrode active material layer by wrapping single-walled carbon nanotubes around multi-walled carbon nanotubes, thereby reducing weight variations. This makes it easier to homogenize the reaction within the battery, extend the battery's lifespan, and improve the battery's strength, preventing cracks from occurring even when high localized pressure is applied during electrode manufacturing, such as by pressing.

[0131] While the undercoat layer is not particularly limited, it is preferable that it contains at least a conductive additive and the undercoat layer constituent materials excluding the electrode active material and conductive additive, in order to improve the strength of the battery and to homogenize the reaction within the battery, even if the electrode constituent materials such as binders, thickeners, and dispersants in the electrode active material layer are absent or present in very small amounts.

[0132] [1-3-1] Conductive additive Examples of conductive additives include acetylene black, Ketjenblack, carbon black, carbon nanotubes, graphite, graphene, and amorphous carbon obtained by heat treatment of organic materials. Amorphous carbon materials, as described later, can also be used. These conductive additives can be used individually or in combination of two or more.

[0133] Furthermore, while there are no particular restrictions on the particle size of the conductive additive in the undercoat layer, even if the electrode constituent materials such as binders, thickeners, and dispersants in the electrode active material layer are absent or present in very small amounts, the movement of lithium ions is less likely to be inhibited. This makes it easier to homogenize the reaction within the battery, extend the battery life, improve the battery's strength, and prevent cracks from occurring due to pressing during electrode manufacturing even when high pressure is applied locally. Therefore, when the conductive additive is in particulate form, the average particle size is preferably 0.001 to 10 μm, more preferably 0.01 to 5 μm, and even more preferably 0.1 to 1 μm. The average particle size of the conductive additive is measured by laser diffraction / scattering.

[0134] In the lithium-ion secondary battery electrode (negative electrode or positive electrode for lithium-ion secondary battery) of the present invention, the content of the conductive additive in the undercoat layer is preferably 20 to 80% by mass, more preferably 30 to 70% by mass, and even more preferably 40 to 60% by mass, from the viewpoint of not inhibiting lithium ion movement even when electrode constituent materials such as binders, thickeners, and dispersants in the electrode active material layer are absent or present in very small amounts, thereby making it easier to homogenize the reaction within the battery, extending the battery life, improving the strength of the battery, making it less likely for cracks to occur due to pressing during electrode manufacturing even when high loads are applied locally, and making it less likely for the undercoat layer and the electrode active material layer to peel off. When multiple conductive additives are used, it is preferable to adjust their total amount so that it falls within the above range. In the undercoat layer, the total amount of the conductive additive and the undercoat layer constituent materials excluding the conductive additive (total amount of the undercoat layer) is 100% by mass.

[0135] [1-3-2] Undercoat layer constituent materials excluding conductive additives The undercoat layer constituent materials (negative electrode undercoat layer constituent materials or positive electrode undercoat layer constituent materials), excluding conductive additives, include substances that have adhesion to conductive additives and electrode current collectors (negative electrode current collector or positive electrode current collector) (binding agents), as well as thickeners, dispersants, and the like.

[0136] Examples of undercoat layer constituent materials (negative electrode undercoat layer constituent materials or positive electrode undercoat layer constituent materials) excluding such conductive additives include, for example, fluorine-based polymers (polyvinylidene fluoride resin, polytetrafluoroethylene resin, vinylidene fluoride-hexafluoropropylene copolymer, etc.), polyolefin resins (styrene-butadiene copolymer resin, ethylene vinyl alcohol copolymer resin, etc.), synthetic rubbers (styrene-butadiene rubber, acrylonitrile-butadiene rubber, ethylene propylene diene rubber, etc.), polyacrylonitrile, polyamide, polyimide, polyacrylic acid, polyacrylic acid ester, polyvinyl ether, carboxymethylcellulose, carboxymethylcellulose sodium salt, carboxymethylcellulose ammonium, polyurethane, hydroxypropylcellulose, hydroxyethylcellulose, methylcellulose, etc., used as binders, thickeners, or dispersants.

[0137] In the lithium-ion secondary battery electrode (negative electrode or positive electrode for lithium-ion secondary battery) of the present invention, the content of the undercoat layer constituent material (negative electrode undercoat layer constituent material or positive electrode undercoat layer constituent material), excluding conductive additives, in the undercoat layer is preferably 20 to 80% by mass, more preferably 30 to 70% by mass, and even more preferably 40 to 60% by mass, from the viewpoint of not inhibiting lithium ion movement, even if the electrode constituent material such as binders, thickeners, and dispersants in the electrode active material layer is either not present or is in a very small amount, making it easier to homogenize the reaction within the battery, making it easier to extend the battery life, making it easier to improve the strength of the battery, and making it easier for cracks to occur due to pressing during electrode manufacturing even when high load pressure is applied locally. When multiple undercoat layer constituent materials (negative electrode undercoat layer constituent material or positive electrode undercoat layer constituent material), excluding conductive additives, are used, it is preferable to adjust the total amount so that it falls within the above range. Furthermore, in the undercoat layer, the total amount of the conductive additive and the undercoat layer constituent materials excluding the conductive additive (total amount of the undercoat layer) is 100% by mass.

[0138] [1-3-3] Undercoat layer In the lithium-ion secondary battery electrode (negative electrode or positive electrode) of the present invention, the thickness of the undercoat layer is preferably above a certain level from the viewpoint of improving the strength of the battery and preventing cracks from occurring due to pressing during electrode manufacturing even when high load pressure is applied locally. On the other hand, even if the electrode constituent materials such as binders, thickeners, and dispersants in the electrode active material layer are not present or are present in very small amounts, it is preferable to make the undercoat layer as thin as possible from the viewpoint of making it easier to homogenize the reaction in the battery and extend the battery life, as it does not easily hinder the movement of lithium ions. For this reason, the thickness of the undercoat layer in the lithium-ion secondary battery electrode (negative electrode or positive electrode) of the present invention is preferably 0.1 to 10.0 μm, more preferably 0.5 to 7.0 μm, and even more preferably 1.0 to 5.0 μm. While some undercoat layers are composed of materials that inhibit lithium ion movement, the above thickness makes it easier to improve the strength of the battery, reduces the likelihood of cracks occurring due to pressing during electrode manufacturing, prevents the undercoat layer from separating from the electrode active material layer, and minimizes the impact on reaction uniformity, thus facilitating the homogenization of the reaction.

[0139] 2. Method for manufacturing electrodes for lithium-ion secondary batteries The method for manufacturing the electrode active material layer and the electrode for a lithium-ion secondary battery of the present invention is not particularly limited, but for example, when forming an undercoat layer, (1) A step of applying an undercoat layer forming composition onto an electrode current collector to form an undercoat layer. (2) A step of forming the electrode active material layer on the undercoat layer formed on the electrode current collector using an electrode active material layer forming composition. Equipped with, The electrode active material layer forming composition contains at least an electrode active material and carbon nanotubes, wherein the carbon nanotubes include single-walled carbon nanotubes and multi-walled carbon nanotubes, and the total content of carbon nanotubes is 0.01 to 1.4% by mass when the total amount of the electrode active material layer for lithium-ion secondary batteries is 100% by mass, and the content of single-walled carbon nanotubes is 50 to 90% by mass when the total amount of carbon nanotubes is 100% by mass, and the content of multi-walled carbon nanotubes is 10 to 50% by mass.

[0140] If the undercoat layer is not required, the electrode active material layer for lithium-ion secondary batteries and the electrode for lithium-ion secondary batteries of the present invention can be manufactured by forming the electrode active material layer on the electrode current collector using the above-mentioned electrode active material layer forming composition.

[0141] (2-1) Process (1) In step (1), the electrode current collector and the undercoat layer can be those described above. The undercoat layer forming composition is a composition capable of forming the undercoat layer described above, and can contain the same components as the undercoat layer described above. The content of each component in the undercoat layer forming composition can also be the same as that of the undercoat layer described above.

[0142] In a composition for forming an undercoat layer, when mixing at least carbon nanotubes, optionally conductive additives other than carbon nanotubes, and optionally undercoat layer constituent materials other than conductive additives to form an undercoat layer paste composition, it is also possible to make it into a paste by including one or more organic solvents such as water, alcohol (methanol, ethanol, n-propyl alcohol, isopropyl alcohol, etc.), acetone, N-methylpyrrolidone, dimethyl sulfoxide, and dimethylformamide. In this case, the content of each component is a value with the total amount of carbon nanotubes, optionally conductive additives other than carbon nanotubes, and optionally undercoat layer constituent materials other than conductive additives, i.e., the total amount of solids, as 100% by mass.

[0143] The method for producing the undercoat layer-forming composition is not particularly limited. For example, the undercoat layer-forming composition can be produced by mixing the above-mentioned components by a conventional method.

[0144] The undercoat layer can be manufactured by forming the above-described undercoat layer-forming composition into layers. For example, if the undercoat layer-forming composition is an undercoat layer-forming paste composition, the paste composition can be applied to the electrode current collector by a conventional method, dried by a conventional method as needed, and formed into layers.

[0145] (2-2) Process (2) In step (1), the electrode current collector, undercoat layer, and electrode active material layer can be those described above. The electrode active material layer forming composition is a composition capable of forming the electrode active material layer described above, and can contain the same components as the electrode active material layer described above. The content of each component in the electrode active material layer forming composition can also be the same as that of the electrode active material layer described above.

[0146] In a composition for forming an electrode active material layer, if a paste composition for forming an electrode active material layer is made by mixing at least an electrode active material, carbon nanotubes, a conductive additive other than carbon nanotubes if necessary, and electrode constituent materials excluding the electrode active material, carbon nanotubes, and conductive additives other than carbon nanotubes if necessary, it is also possible to make it into a paste by including one or more organic solvents such as water, alcohol (methanol, ethanol, n-propyl alcohol, isopropyl alcohol, etc.), acetone, N-methylpyrrolidone, dimethyl sulfoxide, and dimethylformamide. In this case, the content of each component is a value with the total amount of the electrode active material, carbon nanotubes, a conductive additive other than carbon nanotubes if necessary, and electrode constituent materials excluding the electrode active material, carbon nanotubes, and conductive additives other than carbon nanotubes if necessary, i.e., the total amount of solids is taken as 100% by mass.

[0147] The method for producing the electrode active material layer formation composition is not particularly limited. For example, the electrode active material layer formation composition can be produced by mixing the above-mentioned components by a conventional method.

[0148] The electrode active material layer can be manufactured by forming the above-described electrode active material layer forming composition into layers. For example, if the electrode active material layer forming composition is an electrode active material layer forming paste composition, the layer can be formed on the undercoat layer obtained in step (1) by a conventional method using the paste composition. Specifically, the electrode active material layer forming paste composition can be applied or transferred onto the undercoat layer obtained in step (1), and dried by a conventional method as needed to form layers.

[0149] 3. Lithium-ion rechargeable batteries The lithium-ion secondary battery of the present invention is equipped with the lithium-ion secondary battery electrode of the present invention (negative electrode or positive electrode for lithium-ion secondary battery) described above. When the lithium-ion secondary battery electrode of the present invention is used as the negative electrode, the positive electrode can be either the lithium-ion secondary battery electrode of the present invention or a positive electrode applied to a known lithium-ion secondary battery. Furthermore, when the lithium-ion secondary battery electrode of the present invention is used as the positive electrode, the negative electrode can be either the lithium-ion secondary battery electrode of the present invention or a negative electrode applied to a known lithium-ion secondary battery. In addition, the lithium-ion secondary battery of the present invention may also be equipped with an electrolyte applied to a known lithium-ion secondary battery and a container for housing these electrode components.

[0150] When using a known negative electrode applicable to lithium-ion secondary batteries, there are no particular restrictions on the negative electrode, and any well-known negative electrode can be used. An example of a well-known negative electrode is shown below.

[0151] The negative electrode current collector constituting the negative electrode is preferably made of a material that is electrochemically stable at the potential used and has high electronic conductivity, such as copper, stainless steel, nickel, or carbon material. This negative electrode current collector can be in the form of a foil, mesh, or other similar component.

[0152] Furthermore, the negative electrode active material that constitutes the negative electrode is usually a material that can intercept and release lithium ions. For example, carbon materials such as natural graphite, artificial graphite, and amorphous carbon; metallic materials that can be alloyed with lithium such as Si, Al, Sn, Pb, Zn, Bi, In, Mg, Ga, Si alloys, Sn alloys, Al alloys, etc.; SiO x (0 <x<2)、SnO x(0 < x < 2), metals oxides such as Si, Li2TiO3, vanadium oxides, etc. that can occlude and release lithium ions; composite materials containing metal materials and carbon materials such as Si-C composites, Sn-C composites, etc. These negative electrode active materials can be used alone or in combination of two or more. From the perspective of particularly suppressing the volume change of the electrode active material (negative electrode active material) during charge and discharge and particularly improving the charge and discharge cycle characteristics, materials that do not contain silicon, that is, carbon materials; metal materials that do not contain silicon such as Al, Sn, Pb, Zn, Bi, In, Mg, Ga, Sn alloys, Al alloys, etc. that can be alloyed with lithium; SnO x (0 < x < 2), metal oxides that do not contain silicon and can occlude and release lithium ions such as Si, Li2TiO3, vanadium oxides, etc.; composite materials that do not contain silicon and contain metal materials and carbon materials such as Sn-C composites, etc. can also be adopted. Among them, when a conductive material such as a carbon material is used as the negative electrode active material, it can also function as a conductive assistant, and it is particularly easy to reduce the content of substances that inhibit the movement of lithium ions.

[0153] As the electrode active material (negative electrode active material) as described above, from the perspective of particularly suppressing the volume change of the electrode active material (negative electrode active material) during charge and discharge, suppressing the capacity reduction due to the volume change, and particularly improving the charge and discharge cycle characteristics, the volume change of the electrode active material (negative electrode active material) during charge and discharge is preferably 150% or less, more preferably 120% or less. Note that the smaller the volume change, the better, and the lower limit value is not set, but if the lower limit value is set, it is 0%. Note that this numerical value of the volume change assumes that when there is no volume change, it is 0%, and it indicates how much the electrode active material (negative electrode active material) expands during full charge compared to the electrode active material (negative electrode active material) during full discharge. The following formula: (Volume at full charge) - (Volume at full discharge) / (Volume at full discharge) × 100 is calculated by.

[0154] Other than the negative electrode active material that constitutes the negative electrode, the same conductive additives other than carbon nanotubes and other negative electrode materials as those used in the lithium-ion secondary battery electrode of the present invention described above can be used, and their content can be in the amounts commonly used.

[0155] When using a known positive electrode applicable to lithium-ion secondary batteries, any positive electrode capable of supplying lithium ions to the negative electrode is acceptable, and any well-known positive electrode can be used. An example of a well-known positive electrode is shown below.

[0156] Examples of materials that can be used as the positive electrode current collector include aluminum, stainless steel, and carbon materials, which are electrochemically stable at the potential being used and have high electronic conductivity.

[0157] Furthermore, as the positive electrode active material constituting the positive electrode, a material capable of intercalating and releasing lithium ions is usually used. Examples include lithium transition metal composite oxides having an α-NaFeO2 type crystal structure, lithium transition metal oxides having a spinel type crystal structure, polyanionic compounds, chalcogen compounds, sulfur, etc. As an example of a lithium transition metal composite oxide having an α-NaFeO2 type crystal structure, Li[Li x1 Ni γ1 Mn β1 Co (1-x1-γ1-β1) ]O2(0≦x1<0.5, 0≦γ1≦1, 0≦β1≦1, 0≦γ1+β1≦1), Li[Li x2 Ni γ2 Co β2 Al (1-x2-γ2-β2) Examples include ]O2 (0≦x2<0.5, 0≦γ2≦1, 0≦β2≦1, 0≦γ2+β2≦1), etc. As a lithium transition metal oxide having a spinel-type crystal structure, Li x3 Mn2O4 (0.9 ≤ x 3 < 1.5), Li x4 Ni γ4 Mn (2-γ4)Examples include O4 (0.9 ≤ x4 < 1.5, 0 ≤ γ4 ≤ 2). Examples of polyanion compounds include LiFePO4, LiMnPO4, LiNiPO4, LiCoPO4, Li3V2(PO4)3, Li2MnSiO4, Li2CoPO4F, etc. Examples of chalcogen compounds include titanium disulfide, molybdenum disulfide, molybdenum dioxide, etc. Some atoms or polyanions in these materials may be substituted with atoms or anion species of other elements. These positive electrode active materials can be used individually or in combination of two or more. Among these, the lithium transition metal composite oxides are preferred as positive electrode active materials from the viewpoint of increasing energy density.

[0158] Other than the positive electrode active material that constitutes the positive electrode, the same materials as those used in the electrode for lithium-ion secondary batteries of the present invention, excluding the electrode active material and carbon nanotubes, can be used as positive electrode constituent materials, and their content can also be the same as that used in the electrode for lithium-ion secondary batteries of the present invention, excluding the electrode active material and carbon nanotubes.

[0159] Furthermore, the electrolyte is preferably an electrolyte obtained by dissolving a salt in an aprotic organic solvent, and is placed between the positive electrode and the negative electrode. It is preferable that the electrolyte is impregnated and held in a separator made of, for example, a nonwoven fabric to prevent short circuits between the positive and negative electrodes.

[0160] Examples of aprotic organic solvents that constitute the electrolyte mentioned above include esters such as ethylene carbonate, propylene carbonate, butylene carbonate, dimethyl carbonate, diethyl carbonate, methyl ethyl carbonate, γ-butyrolactone, methyl formate, and methyl acetate; furans such as tetrahydrofuran and 2-methyltetrahydrofuran; ethers such as dioxolane, diethyl ether, dimethoxyethane, diethoxyethane, and methoxyethoxyethane; dimethyl sulfoxide; sulforanes such as sulfolane and methylsulfolane; and acetonitrile. These aprotic organic solvents may be used individually or in combination of two or more.

[0161] On the other hand, examples of lithium salts that dissolve in such aprotic organic solvents include lithium perchlorate, lithium borofluoride, lithium hexafluoride phosphate, lithium hexafluoride arsenate, lithium trifluoromethanesulfonate, lithium halides, lithium aluminate chloride, and lithium bis(fluorosulfonyl)imide. These salts may be used individually or in combination of two or more.

[0162] Because the lithium-ion secondary battery of the present invention uses the lithium-ion secondary battery electrode of the present invention (negative electrode or positive electrode for lithium-ion secondary battery) for the negative electrode and / or positive electrode, it has sufficient strength to maintain the shape of the electrode, does not crack due to pressing during electrode manufacturing, does not delaminate between the undercoat layer and the electrode active material layer, and does not easily hinder the movement of lithium ions, thus homogenizing the reaction within the battery and extending the battery life. For this reason, this lithium-ion secondary battery is expected to be deployed in the market in the future and can be effectively used in electric vehicle applications for car sharing, particularly in AIEV (Artificial Intelligence Electric Vehicle) applications, where further extended lifespan will be required. [Examples]

[0163] The present invention will be specifically described below with reference to examples, but the present invention is not limited to these examples.

[0164] In the following examples, the graphite particles used as the negative electrode active material are all defined by the following formula: (Volume when fully charged) - (Volume when fully discharged) / (Volume when fully discharged) × 100 The volume change calculated by this method is 10%.

[0165] [Examples 1-3 and Comparative Example 1: Positive electrode for lithium-ion secondary battery] Comparative Example 1 LiNi 0.8 Co 0.15 Al 0.05 98.5% by mass of O2 (NCA; average particle size 12 μm), 0.5% by mass of single-walled carbon nanotubes (bundled single-walled CNT aggregates; average outer diameter 2 nm, average length > 5 μm, G / D: 80~150 per single-walled CNT), 1.0% by mass of acetylene black (AB; average particle size 30 nm) as a conductive additive other than carbon nanotubes, and an appropriate amount of N-methylpyrrolidone were added and kneaded to form a slurry. An undercoat layer was placed on top of aluminum foil (thickness 15 μm) which served as the positive electrode current collector. The undercoat layer consisted of 50% by mass of carbon black (average particle size 30 nm), 50% by mass of carboxymethylcellulose (CMC), and a thickness of 1 μm. After drying with a ConMari reverse coater, the mass per unit area of ​​the positive electrode active material layer was 18.9 mg / cm². 2 The material was applied to both sides, dried at 100°C, and a 20m long pre-press positive electrode was obtained.

[0166] Example 1 LiNi 0.8 Co 0.15 Al 0.05 The composition consists of 98.0% by mass of O2 (NCA; average particle size 12 μm), 0.5% by mass of single-walled carbon nanotubes (bundled single-walled CNT aggregates; average outer diameter 2 nm, average length > 5 μm, G / D: 80~150 per single-walled CNT), 0.5% by mass of multi-walled carbon nanotubes (average outer diameter 10 nm, average length 100 μm, G / D: 0.5~5 per multi-walled CNT), and acetylene black (AB; average) as a conductive additive other than carbon nanotubes. 1.0% by mass of (30 nm particle size) and an appropriate amount of N-methylpyrrolidone are added and kneaded to form a slurry. This slurry is then applied to an undercoat layer on an aluminum foil (15 μm thick) which serves as the positive electrode current collector. The undercoat layer consists of 50% by mass of carbon black (average particle size 30 nm) and 50% by mass of carboxymethylcellulose (CMC), with a thickness of 1 μm. After drying with a ConnReverse coater, the mass per unit area of ​​the positive electrode active material layer is 18.9 mg / cm². 2The material was applied to both sides, dried at 100°C, and a 20m long pre-press positive electrode was obtained.

[0167] Example 2 LiNi 0.8 Co 0.15 Al 0.05 The composition consists of 98.25% by mass of O2 (NCA; average particle size 12 μm), 0.375% by mass of single-walled carbon nanotubes (bundled single-walled CNT aggregates; average outer diameter 2 nm, average length > 5 μm, G / D: 80~150 per single-walled CNT), 0.375% by mass of multi-walled carbon nanotubes (average outer diameter 10 nm, average length 100 μm, G / D: 0.5~5 per multi-walled CNT), and acetylene black (AB) as a conductive additive other than carbon nanotubes. 1.0% by mass of carbon black (average particle size 30 nm) and an appropriate amount of N-methylpyrrolidone are added and kneaded to form a slurry. This slurry is then applied to an undercoat layer consisting of 50% by mass of carbon black (average particle size 30 nm), 50% by mass of carboxymethylcellulose (CMC), and a thickness of 1 μm, on top of an aluminum foil (thickness 15 μm) which serves as the positive electrode current collector. After drying with a ConnReverse coater, the mass per unit area of ​​the positive electrode active material layer is 18.9 mg / cm². 2 The material was applied to both sides, dried at 100°C, and a 20m long pre-press positive electrode was obtained.

[0168] Example 3 LiNi 0.8 Co 0.15 Al 0.05The composition consists of 98.5% by mass of O2 (NCA; average particle size 12 μm), 0.25% by mass of single-walled carbon nanotubes (bundled single-walled CNT aggregates; average outer diameter 2 nm, average length > 5 μm, G / D: 80~150 per single-walled CNT), 0.25% by mass of multi-walled carbon nanotubes (average outer diameter 10 nm, average length 100 μm, G / D: 0.5~5 per multi-walled CNT), and acetylene black (AB; flat) as a conductive additive other than carbon nanotubes. 1.0% by mass of carbon black (average particle size 30 nm) and an appropriate amount of N-methylpyrrolidone are added and kneaded to form a slurry. This slurry is then applied to an undercoat layer consisting of 50% by mass of carbon black (average particle size 30 nm) and 50% by mass of carboxymethylcellulose (CMC), with a thickness of 1 μm, on top of an aluminum foil (thickness 15 μm) which serves as the positive electrode current collector. After drying with a ConnReverse coater, the mass per unit area of ​​the positive electrode active material layer is 18.9 mg / cm². 2 The material was applied to both sides, dried at 100°C, and a 20m long pre-press positive electrode was obtained.

[0169] [Example 4 and Comparative Example 2: Negative electrode for lithium-ion secondary battery] Comparative Example 2 As the negative electrode active material, 99.5% by mass of natural graphite (graphite; average particle size 4 μm), 0.5% by mass of single-walled carbon nanotubes (bundled single-walled CNT aggregates; average outer diameter 2 nm, average length > 5 μm per single-walled CNT, G / D: 80~150), and an appropriate amount of N-methylpyrrolidone are mixed and kneaded to form a slurry. This slurry is then applied to a copper foil (thickness 8 μm) which serves as the negative electrode current collector, with an undercoat layer consisting of 50% by mass of carbon black (average particle size 30 nm), 50% by mass of carboxymethylcellulose (CMC), and a thickness of 1 μm. The mass per unit area of ​​the negative electrode active material layer after drying with a doctor blade is 10.0 mg / cm². 2 The coating was applied to both sides, dried at 100°C, and a negative electrode was obtained before pressing.

[0170] Example 4 As the negative electrode active material, 99.0% by mass of natural graphite (graphite; average particle size 4 μm), 0.5% by mass of single-walled carbon nanotubes (bundled single-walled CNT aggregates; average outer diameter 2 nm, average length > 5 μm per single-walled CNT, G / D: 80~150), 0.5% by mass of multi-walled carbon nanotubes (average outer diameter 10 nm, average length 100 μm per multi-walled CNT, G / D: 0.5~5 per multi-walled CNT), and an appropriate amount of N-methylpyrrolidone were added and kneaded to form a slurry. This slurry was then applied to a copper foil (thickness 8 μm) which served as the negative electrode current collector, with an undercoat layer consisting of 50% by mass of carbon black (average particle size 30 nm), 50% by mass of carboxymethylcellulose (CMC), and a thickness of 1 μm. The mass per unit area of ​​the negative electrode active material layer after drying with a doctor blade was 10.0 mg / cm². 2 The coating was applied to both sides, dried at 100°C, and a negative electrode was obtained before pressing.

[0171] Test Example 1: Weight Variation Test For the pre-press positive electrodes obtained in Examples 1-3 and Comparative Example 1, or the pre-press negative electrodes obtained in Example 4 and Comparative Example 2, as described above, the target concentration for the pre-press positive electrodes was 18.9 mg / cm². 2 For the anode before pressing, the concentration is 10.0 mg / cm³. 2 Ten pieces were then punched out to 2cm x 5cm, their weight was measured, and the average basis weight, maximum basis weight, and minimum basis weight of the positive electrode active material layer or negative electrode active material layer on one side were measured. Weight variation = (Maximum weight - Minimum weight) / Target weight × 100 (%) It was evaluated as follows. The results are shown in Table 1.

[0172] Test Example 2: Press Resistance Test The press resistance of the pre-press positive electrodes obtained in Examples 1-3 and Comparative Example 1, or the pre-press negative electrodes obtained in Example 4 and Comparative Example 2, was evaluated by punching them out to 2cm x 5cm, roll pressing them under a linear pressure of 2kN / cm, and observing the surface condition of the electrodes.

[0173] Furthermore, ◎: No lifting at all ○: Lifting occurs in a very small area. ×: Cracks may occur or the current collector may detach. This was the evaluation. The results are shown in Table 1.

[0174] [Table 1]

Claims

1. It contains at least an electrode active material and carbon nanotubes, The carbon nanotubes include single-walled carbon nanotubes and multi-walled carbon nanotubes. Assuming the total amount of the electrode active material layer for lithium-ion secondary batteries is 100% by mass, The content of the electrode active material is 96.0 to 99.9% by mass. The total carbon nanotube content is 0.01 to 1.4% by mass. The content of conductive additives other than carbon nanotubes is 0 to 3.5% by mass. It does not contain electrode constituent materials other than the electrode active material, the carbon nanotubes, and conductive additives other than the carbon nanotubes, and An electrode active material layer for a lithium-ion secondary battery, wherein the total amount of carbon nanotubes is 100% by mass, the content of single-walled carbon nanotubes is 50 to 90% by mass, and the content of multi-walled carbon nanotubes is 10 to 50% by mass.

2. A positive electrode active material layer for a lithium-ion secondary battery, The electrode active material layer for a lithium-ion secondary battery according to claim 1.

3. Assuming the total amount of the electrode active material layer is 100% by mass, The content of the electrode active material is 96.6 to 99.9% by mass. The content of electrode constituent materials other than the electrode active material and the carbon nanotubes is 0 to 2.0% by mass, and This is a negative electrode active material layer for lithium-ion secondary batteries. The electrode active material layer for a lithium-ion secondary battery according to claim 1.

4. Assuming the total amount of the electrode active material layer is 100% by mass, The content of the electrode active material is 97.4 to 99.9% by mass. The content of electrode constituent materials other than the electrode active material and the carbon nanotubes is 0 to 1.2% by mass. The electrode active material layer for a lithium-ion secondary battery according to claim 1.

5. The electrode active material layer for a lithium-ion secondary battery according to claim 4, which is a negative electrode active material layer for a lithium-ion secondary battery.

6. The electrode active material layer for a lithium-ion secondary battery according to claim 1, wherein the electrode active material is a material capable of intercalating and releasing lithium ions.

7. The electrode active material layer for a lithium-ion secondary battery according to claim 1, which is for a lithium-ion secondary battery used in an electric vehicle for car sharing.

8. An electrode for a lithium-ion secondary battery, comprising an electrode current collector, an undercoat layer, and an electrode active material layer for a lithium-ion secondary battery according to any one of claims 1 to 7.

9. The electrode for a lithium-ion secondary battery according to claim 8, wherein the undercoat layer contains at least a conductive additive and the undercoat layer constituent material excluding the conductive additive.

10. The electrode for a lithium-ion secondary battery according to claim 9, wherein, with a total amount of the undercoat layer being 100% by mass, the content of the conductive additive is 20 to 80% by mass, and the content of the undercoat layer constituent materials excluding the conductive additive is 20 to 80% by mass.

11. The electrode for a lithium-ion secondary battery according to claim 8, wherein the thickness of the undercoat layer is 0.1 to 10.0 μm.

12. An electrode for a lithium-ion secondary battery according to claim 8, which is for a lithium-ion secondary battery used in an electric vehicle for car sharing.

13. A lithium-ion secondary battery comprising the electrodes for a lithium-ion secondary battery described in claim 8.

14. A lithium-ion secondary battery according to claim 13, used in an electric vehicle for car sharing.