Power storage device
By using a non-aqueous electrolyte with additives in lithium-ion batteries to enhance the negative electrode coating, capacity degradation is suppressed, enabling stable charging and extended battery life.
Patent Information
- Application Number
- JP2024019221
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2024-02-13
- Publication Date
- 2025-08-25
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Figure 2025123647000009 
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Abstract
Description
[Technical Field]
[0001] The present disclosure relates to an electricity storage device. [Background technology]
[0002] Examples of power storage devices include secondary batteries such as lithium-ion secondary batteries. In recent years, this type of secondary battery has been suitably used as a portable power source for personal computers, mobile terminals, and the like, and as a power source for driving vehicles such as electric vehicles (BEVs), hybrid electric vehicles (HEVs), and plug-in hybrid electric vehicles (PHEVs). Japanese Patent Application Laid-Open Publication No. 2017-050142 discloses a negative electrode active material for a lithium-ion secondary battery. The negative electrode active material includes a plurality of flake graphite particles and flake silicon particles whose surfaces are coated with carbon. The plurality of flake graphite particles are aggregated to form a particle shape. The silicon particles are present between the plurality of flake graphite particles. The publication states that a high-capacity, long-life lithium-ion secondary battery can be realized by using a negative electrode active material having such a configuration. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2017-050142 Summary of the Invention [Problem to be solved by the invention]
[0004] The present inventors have been thinking about how to suppress the capacity degradation that occurs when an electricity storage device is charged. [Means for solving the problem]
[0005] The electricity storage device disclosed herein includes a non-aqueous electrolyte. The non-aqueous electrolyte contains a non-aqueous solvent and an additive A. The non-aqueous solvent is a carbonate. The additive A is at least one of 2-vinylpyridine, vinyl benzoate, 3,4-thiophenedicarboxylic anhydride, 1-ethyl-3-methylimidazolium methyl sulfate, 1-ethyl-3-methylimidazolium ethyl sulfate, 1-ethyl-3-methylimidazolium methylphosphonate, and 1-ethyl-3-methylimidazolium bis(perfluoroethylsulfonyl)imide. This configuration can suppress capacity degradation when the electricity storage device is charged. [Brief explanation of the drawings]
[0006] [Figure 1] FIG. 1 is a vertical cross-sectional view of a lithium-ion secondary battery 100. As shown in FIG. [Figure 2] FIG. 2 is a schematic diagram of the electrode body 20. As shown in FIG. [Figure 3] FIG. 3 is a graph showing the relationship between the reaction resistance of the positive electrode and the positive electrode potential. DETAILED DESCRIPTION OF THE INVENTION
[0007] An embodiment of the energy storage device disclosed herein will be described below. The embodiment described herein does not particularly limit the technology disclosed herein. The technology disclosed herein is not limited to the embodiment described herein, unless otherwise specified. The drawings are schematic and do not necessarily reflect the actual product. Furthermore, members and parts that perform the same function are appropriately designated by the same reference numerals, and redundant explanations may be omitted. Furthermore, the notation "A to B" indicating a numerical range means "greater than or equal to A and less than or equal to B" unless otherwise specified, and also encompasses the meaning of "greater than A and less than B."
[0008] In this specification, the term "electricity storage device" refers to a device in which charging and discharging occur by the movement of charge carriers between a pair of electrodes (positive and negative electrodes) via an electrolyte. Electricity storage devices include secondary batteries such as lithium ion secondary batteries, nickel-metal hydride batteries, and nickel-cadmium batteries; and capacitors such as lithium ion capacitors and electric double layer capacitors. Below, an embodiment in which the electricity storage device is a lithium ion secondary battery will be described.
[0009] Fig. 1 is a longitudinal cross-sectional view of a lithium-ion secondary battery 100. Fig. 2 is a schematic diagram of an electrode assembly 20. As shown in Fig. 1, the lithium-ion secondary battery 100 includes the electrode assembly 20, a case 30, and a non-aqueous electrolyte solution 80.
[0010] 1 and 2, the electrode assembly 20 is a wound electrode assembly in which a long, sheet-like positive electrode 50 and a long, sheet-like negative electrode 60 are stacked together with a long, sheet-like separator 70 interposed therebetween and wound in the sheet longitudinal direction (hereinafter simply referred to as the "longitudinal direction"). In the electrode assembly 20, the exposed region 52a of the positive electrode 50 and the exposed region 62a of the negative electrode 60 protrude outward from both ends in the lateral direction perpendicular to the longitudinal direction.
[0011] As shown in FIGS. 1 and 2 , the positive electrode 50 includes a long sheet-like positive electrode current collector foil 52 and a positive electrode active material layer 54. The positive electrode current collector foil 52 is, for example, an aluminum foil. In this embodiment, the positive electrode current collector foil 52 has a region where the positive electrode active material layer 54 is provided and an exposed region 52a where the positive electrode active material layer 54 is not provided and the surface of the positive electrode current collector foil 52 is exposed. The positive electrode active material layer 54 is provided, for example, in a strip shape along the longitudinal direction on one or both sides (both sides here) of the positive electrode current collector foil 52. The positive electrode active material layer 54 is not provided at an end (the left end in the drawing) in the short-side direction of the sheet (hereinafter simply referred to as the “short-side direction”). Here, the exposed region 52a is a strip-shaped region at the end (the left end in the drawing) in the short-side direction. As shown in FIG. 1, the current collector plate 42a is attached to the exposed region 52a.
[0012] The positive electrode active material layer 54 contains, for example, a positive electrode active material. The positive electrode active material is not particularly limited as long as the effects of the technology disclosed herein are realized, and any positive electrode active material having a conventionally known composition used for this type of application can be used. The positive electrode active material may be, for example, a lithium composite oxide, a lithium transition metal phosphate compound, or the like. The crystal structure of the positive electrode active material is not particularly limited, and may be a layered structure, a spinel structure, an olivine structure, or the like.
[0013] The lithium composite oxide is preferably a lithium transition metal composite oxide containing at least one of Ni, Co, and Mn as a transition metal element. Examples of the lithium transition metal composite oxide include lithium nickel composite oxide, lithium cobalt composite oxide, lithium manganese composite oxide, lithium nickel manganese composite oxide, lithium nickel cobalt manganese composite oxide, lithium nickel cobalt aluminum composite oxide, and lithium iron nickel manganese composite oxide. These positive electrode active materials may be used alone or in combination of two or more.
[0014] In this specification, the term "lithium nickel cobalt manganese composite oxide" refers to oxides containing Li, Ni, Co, Mn, and O as constituent elements, as well as oxides containing one or more additional elements. Examples of the additional elements include transition metal elements and typical metal elements, such as Mg, Ca, Al, Ti, V, Cr, Y, Zr, Nb, Mo, Hf, Ta, W, Na, Fe, Zn, and Sn. The additional elements may also be metalloid elements, such as B, C, Si, and P; or nonmetallic elements, such as S, F, Cl, Br, and I. This also applies to the lithium nickel composite oxide, lithium cobalt composite oxide, lithium manganese composite oxide, lithium nickel manganese composite oxide, lithium nickel cobalt aluminum composite oxide, and lithium iron nickel manganese composite oxide.
[0015] Examples of lithium transition metal phosphate compounds include lithium iron phosphate (LiFePO4), lithium manganese phosphate (LiMnPO4), and lithium manganese iron phosphate.
[0016] The positive electrode active material is, for example, LiNi 0.33 Co 0.33 Mn 0.33 O2, LiNi 0.5 Co 0.2 Mn 0.3 O2, LiNi 0.6 Co 0.2 Mn 0.2 O2, LiNi 0.8 Co 0.1 Mn 0.1 O2, LiNiO2, LiCoO2, LiFeO2, LiMn2O4, LiNi 0.5 Mn 1.5 O4 and the like can be preferably used.
[0017] The positive electrode active material layer 54 may contain, in addition to the positive electrode active material, a conductive material, a binder, and the like. Examples of conductive materials include carbon black such as acetylene black (AB) and other carbon materials such as graphite. Examples of binders include polyvinylidene fluoride (PVdF). The content of the positive electrode active material relative to the entire positive electrode active material layer 54 is, for example, preferably 70 mass % or more, more preferably 80 mass % to 97 mass %, and even more preferably 85 mass % to 96 mass %. The content of the conductive material relative to the entire positive electrode active material layer 54 is, for example, 0.1 mass % to 20 mass %. The content of the binder relative to the entire positive electrode active material layer 54 is, for example, 0.5 mass % to 15 mass %.
[0018] As shown in FIGS. 1 and 2, the negative electrode 60 includes a long, sheet-like negative electrode current collector foil 62 and a negative electrode active material layer 64. The negative electrode current collector foil 62 is, for example, a copper foil. In this embodiment, the negative electrode current collector foil 62 has a region where the negative electrode active material layer 64 is provided and an exposed region 62a where the negative electrode active material layer 64 is not provided and the surface of the negative electrode active material layer 64 is exposed. The negative electrode active material layer 64 is provided, for example, in a strip shape along the longitudinal direction on one or both sides (both sides in this case) of the negative electrode current collector foil 62. The negative electrode active material layer 64 is not provided at the end in the short side direction (the end on the right side in the figure). Here, the exposed region 62a is a strip-shaped region at the end in the short side direction (the end on the right side in the figure). As shown in FIG. 1, a current collector plate 44a is attached to the exposed region 62a.
[0019] The negative electrode active material layer 64 contains, for example, a negative electrode active material. The negative electrode active material is not particularly limited as long as the effects of the technology disclosed herein are realized, and any conventionally known negative electrode active material used for this type of application can be used. The negative electrode active material is not particularly limited as long as the effects of the technology disclosed herein are realized, but examples thereof include carbon materials such as graphite, hard carbon, and soft carbon; silicon (Si); etc. The content of the negative electrode active material relative to the entire negative electrode active material layer 64 is, for example, preferably 70 mass% or more, more preferably 80 mass% to 99 mass%, and even more preferably 85 mass% to 98 mass%.
[0020] The negative electrode active material layer 64 may contain a binder, a thickener, and the like in addition to the negative electrode active material. Examples of binders include styrene butadiene rubber (SBR). The content of the binder relative to the entire negative electrode active material layer 64 is not particularly limited, but is, for example, 0.1% by mass to 8% by mass. For example, carboxymethyl cellulose (CMC) can be preferably used as the thickener. The content of the thickener relative to the entire negative electrode active material layer 64 is not particularly limited, but is, for example, 0.3% by mass to 3% by mass.
[0021] The separator 70 may be a porous sheet (film) made of a resin material such as polyethylene (PE), polypropylene (PP), polyester, cellulose, or polyamide. The porous sheet may have a single-layer structure or a laminated structure of two or more layers (for example, a three-layer structure in which PP layers are laminated on both sides of a PE layer). A heat-resistant layer (HRL) may be provided on the surface of the separator 70.
[0022] The case 30 is, for example, an outer container that houses the electrode assembly 20 and the nonaqueous electrolyte 80. Here, the case 30 is a flat, rectangular case. As shown in FIG. 1 , the case 30 has a positive electrode terminal 42, a negative electrode terminal 44, a safety valve 36, and an inlet (not shown). The positive electrode terminal 42 is, for example, a terminal for external connection on the positive electrode side. Here, the positive electrode terminal 42 is electrically connected to the positive electrode 50 of the electrode assembly 20 via a current collector 42a. The negative electrode terminal 44 is, for example, a terminal for external connection on the negative electrode side. Here, the negative electrode terminal 44 is electrically connected to the negative electrode 60 of the electrode assembly 20 via a current collector 44a. The safety valve 36 is, for example, a thin-walled portion that is configured to release internal pressure in the case 30 when the internal pressure rises above a predetermined level. The inlet is, for example, a portion through which the nonaqueous electrolyte 80 is injected into the case 30.
[0023] The inventors of the present invention have investigated the relationship between the reaction resistance of the positive electrode and the positive electrode potential in a lithium ion secondary battery. The results are shown in Figure 3. Figure 3 is a graph showing the relationship between the reaction resistance of the positive electrode and the positive electrode potential. The vertical axis of the graph in Figure 3 indicates "reaction resistance (%)", and the relationship between the reaction resistance and the positive electrode potential is shown in Figure 3. + The horizontal axis of the graph in Figure 3 shows the relative value when the reaction resistance at the positive electrode potential (V (vs. Li + Figure 3 shows that the lower the positive electrode potential, the higher the reaction resistance of the positive electrode. The reaction resistance at the positive electrode is + / Li), the positive electrode potential becomes 3.7V (vs. Li +The present inventors have found that this phenomenon occurs when the positive electrode potential is 3.7 V (vs. Li + / Li), the change in the crystal structure of the positive electrode active material is greater, and it is thought that if a lithium ion secondary battery is charged in such a state, capacity degradation can be accelerated.
[0024] Therefore, the inventors have attempted to increase the positive electrode potential to 3.7 V (vs. Li) when the voltage of the lithium ion secondary battery is 3.0 V. + / Li), preferably 3.7V (vs. Li + / Li) or more, the inventors of the present invention have found that by increasing the irreversible capacity of the negative electrode of a lithium ion secondary battery by using the electrolyte composition described below, it is possible to increase the positive electrode potential when the battery voltage is 3.0 V, and thus it is possible to suppress capacity degradation during charging.
[0025] The nonaqueous electrolyte solution 80 includes, for example, a nonaqueous solvent. In this embodiment, the nonaqueous solvent is a carbonate. Examples of carbonates include ethylene carbonate (EC), propylene carbonate (PC), diethyl carbonate (DEC), dimethyl carbonate (DMC), ethyl methyl carbonate (EMC), monofluoroethylene carbonate (MFEC), difluoroethylene carbonate (DFEC), monofluoromethyl difluoromethyl carbonate (F-DMC), and trifluorodimethyl carbonate (TFDMC). As the nonaqueous solvent, one type of nonaqueous solvent may be used alone, or two or more types of nonaqueous solvents may be used in combination.
[0026] The nonaqueous electrolyte solution 80 contains, for example, an additive A. Examples of additive A include 2-vinylpyridine, vinyl benzoate, 3,4-thiophenedicarboxylic anhydride, 1-ethyl-3-methylimidazolium methyl sulfate, 1-ethyl-3-methylimidazolium ethyl sulfate, 1-ethyl-3-methylimidazolium methylphosphonate, and 1-ethyl-3-methylimidazolium bis(perfluoroethylsulfonyl)imide. As additive A, one of the above compounds may be used alone, or two or more compounds may be used in combination. The chemical structural formulas of the above compounds are shown below in this order.
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[0034] The content of additive A relative to the total amount of nonaqueous electrolyte solution 80 is preferably set to approximately 0.1% by mass to 5% by mass. From the viewpoint of efficiently achieving the effects of the technology disclosed herein, the content of additive A is preferably 0.25% by mass or more, more preferably 0.5% by mass or more, even more preferably 0.75% by mass or more, and particularly preferably 1% by mass or more. On the other hand, from the viewpoint of shortening the charging time of lithium-ion secondary battery 100, the content of additive A is preferably 3% by mass or less, more preferably 2.5% by mass or less, and even more preferably 2.25% by mass or less.
[0035] The non-aqueous electrolyte 80 may contain, for example, a supporting salt. Examples of the supporting salt include lithium salts such as LiPF6, LiBF4, and LiClO4. The concentration of the supporting salt may be, for example, 0.7 mol / L to 1.3 mol / L.
[0036] The nonaqueous electrolyte 80 may contain an additive B different from the additive A, if necessary. The additive B may be an additive used for this type of application. Examples of the additive B include film-forming agents such as LiB(C2O4)2 (LiBOB), LiBF2 (C2O4), and fluorophosphates (preferably difluorophosphates such as lithium difluorophosphate (LiPO2F2)); gas generating agents such as biphenyl (BP) and cyclohexylbenzene (CHB); thickeners; and the like.
[0037] The lithium ion secondary battery 100 can be used for a variety of purposes. Suitable applications include a driving power source mounted on vehicles such as electric vehicles (BEVs), hybrid electric vehicles (HEVs), and plug-in hybrid electric vehicles (PHEVs). The lithium ion secondary battery 100 can be used, for example, as a storage battery for small-sized power storage devices. The lithium ion secondary battery 100 can also be used, for example, in the form of an assembled battery in which a plurality of batteries are connected in series and / or parallel.
[0038] As described above, the lithium ion secondary battery 100, which is an example of the power storage device disclosed herein, includes a nonaqueous electrolyte solution 80. The nonaqueous electrolyte solution contains a nonaqueous solvent and an additive A. The nonaqueous solvent is a carbonate. The additive A is at least one of 2-vinylpyridine, vinyl benzoate, 3,4-thiophenedicarboxylic anhydride, 1-ethyl-3-methylimidazolium methyl sulfate, 1-ethyl-3-methylimidazolium ethyl sulfate, 1-ethyl-3-methylimidazolium methylphosphonate, and 1-ethyl-3-methylimidazolium bis(perfluoroethylsulfonyl)imide.
[0039] The nonaqueous electrolyte 80 used in the lithium-ion secondary battery 100 contains additive A. Additive A is a component that does not increase the interfacial resistance of the negative electrode 60, but it can promote decomposition of the electrolyte on the surface of the negative electrode active material. In other words, in the lithium-ion secondary battery 100, additive A contained in the nonaqueous electrolyte 80 decomposes a portion of the electrolyte in contact with the surface of the negative electrode active material, thereby increasing the irreversible capacity of the negative electrode 60. The inventors speculate that the mechanism behind this is that the use of a nonaqueous electrolyte containing additive A forms a thicker coating on the negative electrode active material layer 64, increasing the amount of Li absorbed in the coating, making it more difficult for Li to be desorbed and inserted, thereby increasing the irreversible capacity of the negative electrode 60. Alternatively, the inventors speculate that this is due to the formation of a coating that contains more Li per unit volume. The increase in the irreversible capacity of the negative electrode 60 allows the positive electrode potential to be increased when the battery voltage is 3.0 V (i.e., when the lithium-ion secondary battery 100 is at 0% SOC). This makes it difficult for the lithium ion secondary battery 100 to enter a charged state at a positive electrode potential at which the reaction resistance is higher than in other states, thereby suppressing capacity degradation during charging of the lithium ion secondary battery 100.
[0040] Non-aqueous electrolyte solution 80 may contain 1% by mass or more of additive A based on the total amount of non-aqueous electrolyte solution 80. Increasing the content of additive A in non-aqueous electrolyte solution 80 can enhance the effect of increasing the positive electrode potential when the battery voltage is 3.0 V. By setting the content of additive A in non-aqueous electrolyte solution 80 to 1% by mass or more based on the total amount of non-aqueous electrolyte solution 80, it is possible to achieve an effect of reducing the charging time in addition to an effect of suppressing capacity degradation during charging.
[0041] Additive A may be vinyl benzoate, 1-ethyl-3-methylimidazolium methyl sulfate, 1-ethyl-3-methylimidazolium ethyl sulfate, 1-ethyl-3-methylimidazolium methylphosphonate, or 1-ethyl-3-methylimidazolium bis(perfluoroethylsulfonyl)imide. Using any of these additives as additive A can be expected to further improve the effect of shortening charging time. A coating is formed on the negative electrode active material (e.g., graphite) contained in the negative electrode active material layer 64 by decomposition of the additive. The Li conductivity (resistance) of this coating varies depending on the type of additive that decomposes. It is believed that the above-mentioned additives form a coating with lower resistance even when the amount of additive decomposed is greater and the coating becomes thicker (i.e., when the irreversible capacity is large).
[0042] Although not particularly limited, the effect of shortening the charging time can be seen, for example, when the battery voltage is 3.0 V (i.e., when the lithium ion secondary battery 100 has an SOC of 0%) and the positive electrode potential is 3.7 V (vs. Li + This tends to be realized preferably when the positive electrode potential is 3.7 V (vs. Li) or more, where the reaction resistance is higher than in other states. +If it is possible to avoid charging the lithium-ion secondary battery 100 in a state where the SOC is less than 1 / Li, it is possible to charge the lithium-ion secondary battery 100 from SOC 0% to SOC 100% while maintaining a substantially constant reaction resistance. For example, when charging the lithium-ion secondary battery 100, it is possible to omit control of the current value according to the positive electrode potential, thereby achieving the effect of shortening the charging time. Furthermore, it is possible to achieve rapid charging while suppressing capacity degradation.
[0043] The lithium-ion secondary battery 100 may further include a positive electrode 50 having a positive electrode active material layer 54, and a negative electrode 60 having a negative electrode active material layer 64. The positive electrode active material layer 54 may contain a lithium-nickel-cobalt-manganese composite oxide as a positive electrode active material. The negative electrode active material layer may contain graphite as a negative electrode active material. This allows the lithium-ion secondary battery 100 to have a configuration that is more suitable for suppressing capacity degradation during charging.
[0044] As an example, a rectangular lithium ion secondary battery 100 including a flat wound electrode assembly (electrode assembly 20) has been described. The lithium ion secondary battery may be configured as a lithium ion secondary battery including a laminated electrode assembly (i.e., an electrode assembly in which multiple positive electrodes and multiple negative electrodes are alternately stacked). The lithium ion secondary battery may be configured as a cylindrical lithium ion secondary battery, a laminated lithium ion secondary battery, or the like.
[0045] Test examples relating to the technology disclosed herein will be described below, but it is not intended that the technology disclosed herein be limited to those shown in the following test examples.
[0046] <Example 1 to Example 3> Graphite was used as the negative electrode active material, styrene butadiene rubber (SBR) as the binder, and carboxymethyl cellulose (CMC) as the thickener. These were mixed with water as the solvent in a graphite:SBR:CMC mass ratio of 98:1:1 to prepare a negative electrode paste. The negative electrode paste was applied in strips to both sides of a long copper foil strip, dried, and then pressed to obtain a negative electrode sheet.
[0047] LiNi as a positive electrode active material 1 / 3 Co 1 / 3 Mn 1 / 3 O2 (LNCM), acetylene black (AB) as a conductive material, and polyvinylidene fluoride (PVdF) as a binder were prepared. These were mixed with N-methylpyrrolidone (NMP) as a solvent in a mass ratio of LNCM:AB:PVdF = 90:8:2 to prepare a positive electrode paste. The positive electrode paste was applied in strips to both sides of a long piece of aluminum foil, dried, and then pressed to obtain a positive electrode sheet.
[0048] The separator was a porous polyolefin sheet with a three-layer structure (PP / PE / PP) and an HRL. The positive electrode sheet, negative electrode sheet, and two separator sheets were stacked and wound, and then pressed from the side to flatten the stack to produce a flat wound electrode assembly.
[0049] Next, the wound electrode body was connected to a positive electrode terminal and a negative electrode terminal and housed in a rectangular case with an electrolyte injection hole. Subsequently, a nonaqueous electrolyte was injected through the injection hole, which was then airtightly sealed. The nonaqueous electrolyte was prepared by dissolving LiPF as a supporting electrolyte at a concentration of 1.1 mol / L in a mixed solvent containing ethylene carbonate (EC), dimethyl carbonate (DMC), and ethyl methyl carbonate (EMC) in a volume ratio of EC:DMC:EMC = 3:3:4. Furthermore, 2-vinylpyridine (manufactured by Tokyo Chemical Industry Co., Ltd.) as additive A was added in the amount listed in the "Addition Amount (mass %)" column in Table 1. The addition amount listed in the corresponding column in Table 1 is the content (mass %) of additive A when the total nonaqueous electrolyte is taken as 100 mass %. Subsequently, an aging treatment was performed to obtain the lithium ion secondary battery for evaluation of each example.
[0050] <Example 4 to Example 6> Vinyl benzoate (manufactured by Tokyo Chemical Industry Co., Ltd., "Vinyl Benzoate") was used as additive A. The amount of additive A added was as shown in the "Amount added (mass%)" column in Table 1. Otherwise, the same materials and procedures as in Examples 1 to 3 were used to obtain lithium ion secondary batteries for evaluation in each example.
[0051] <Example 7 to Example 9> 3,4-Thiophenedicarboxylic anhydride (manufactured by Tokyo Chemical Industry Co., Ltd.) was used as additive A. The amount of additive A added was as shown in the "Amount added (mass%)" column in Table 1. Otherwise, the same materials and procedures as in Examples 1 to 3 were used to obtain lithium ion secondary batteries for evaluation in each example.
[0052] <Example 10 to Example 12> 1-Ethyl-3-methylimidazolium methyl sulfate (EMI-methyl sulfate) (manufactured by Tokyo Chemical Industry Co., Ltd., 1-Ethyl-3-methylimidazolium Ethyl Sulfate) was used as additive A. The amount of additive A added was as shown in the "Amount added (mass%)" column in Table 1. Otherwise, the same materials and procedures as in Examples 1 to 3 were used to obtain lithium ion secondary batteries for evaluation in each example.
[0053] <Example 13> As additive A, 1-ethyl-3-methylimidazolium bis(perfluoroethylsulfonyl)imide (EMI-bis(perfluoroethylsulfonyl)imide) (manufactured by Tokyo Chemical Industry Co., Ltd., 1-Ethyl-3-methylimidazolium Bis(trifluoromethanesulfonyl)imide) was used. The amount of additive A added was 2 mass %. A lithium ion secondary battery for evaluation in this example was obtained using the same materials and procedures as in Examples 1 to 3 except for this.
[0054] <Example 14> 1-Ethyl-3-methylimidazolium methylphosphonate (EMI-methylphosphonate) (1-Ethyl-3-methylimidazolium Methanesulfonate, manufactured by Tokyo Chemical Industry Co., Ltd.) was used as Additive A. The amount of Additive A added was 1.5 mass %. A lithium ion secondary battery for evaluation in this example was obtained using the same materials and procedures as in Examples 1 to 3 except for this.
[0055] <Example 15> 1-Ethyl-3-methylimidazolium ethyl sulfate (EMI-ethyl sulfate) (manufactured by Tokyo Chemical Industry Co., Ltd.) was used as additive A. The amount of additive A added was 1.5 mass %. A lithium ion secondary battery for evaluation in this example was obtained using the same materials and procedures as in Examples 1 to 3.
[0056] <Example 16> Additive A was not used. Except for this, the same materials and procedures as in Examples 1 to 3 were used to obtain a lithium ion secondary battery for evaluation in this example.
[0057] <Cycle test> Each evaluation lithium-ion secondary battery was placed in a 25°C environment. It was subjected to constant current (CC)-constant voltage (CV) charging (cut current: 1 / 50C) at a current value of 1 / 5C up to 4.1V. After a 10-minute rest, it was discharged at a constant current value of 1 / 5C down to 3.0V. The discharge capacity at this time was measured and used as the initial capacity. Subsequently, each evaluation lithium-ion secondary battery was subjected to 500 cycles of CCCV charging and CCCV discharging in the voltage range of 3.0V to 4.2V. The current value during charging was 5C. The current value during discharging was 1C. The capacity after 500 cycles was measured using the same procedure as when measuring the initial capacity. The capacity retention rate was then calculated using the formula: capacity retention rate (%) = (capacity after 500 cycles / initial capacity) × 100. The capacity retention rate of each evaluation lithium-ion secondary battery was calculated relative to the capacity retention rate of Example 16, which was set to 100. The results are shown in the "Capacity retention rate" column of Table 1.
[0058] <Measurement of positive electrode potential> Each evaluation lithium ion secondary battery was discharged to 3.0 V (SOC 0%). At this time, the positive electrode potential of each evaluation lithium ion secondary battery was measured. The positive electrode potential was measured by inserting a reference electrode between the positive electrode and the negative electrode and calculating it from the potential difference between the reference electrode and the positive electrode. The reference electrode was a reference electrode made from lithium iron phosphate, which is used for this type of purpose. The results are shown in Table 1 as "Positive electrode potential (V(Li + / Li))" column.
[0059] <Charging time measurement> Each evaluation lithium-ion secondary battery was discharged to 3.0 V (to 0% SOC). Subsequently, each evaluation lithium-ion secondary battery was charged to 1 Ah at a constant output of 100 W. The time required for this charging was measured. The charging time for each evaluation lithium-ion secondary battery was calculated relative to the charging time for Example 16, which was set at 100. The results are shown in the "Charge Time" column in Table 1. The 100 W constant output conditions for the above charging are charging conditions that simulate so-called rapid charging.
[0060] [Table 1]
[0061] As shown in Table 1, the lithium ion secondary batteries of Examples 1 to 15 are provided with a non-aqueous electrolyte solution containing a non-aqueous solvent that is a carbonate and Additive A. The lithium ion secondary battery of Example 16 is not provided with a non-aqueous electrolyte solution containing Additive A. It was shown that the lithium ion secondary batteries of Examples 1 to 15 are less susceptible to capacity degradation during charging than the lithium ion secondary battery of Example 6.
[0062] The techniques disclosed herein may include the techniques described in the following items. Item 1: An electricity storage device including a non-aqueous electrolyte, The nonaqueous electrolyte solution is a non-aqueous solvent that is a carbonate; Additive A is at least one of 2-vinylpyridine, vinyl benzoate, 3,4-thiophenedicarboxylic anhydride, 1-ethyl-3-methylimidazolium methyl sulfate, 1-ethyl-3-methylimidazolium ethyl sulfate, 1-ethyl-3-methylimidazolium methylphosphonate, and 1-ethyl-3-methylimidazolium bis(perfluoroethylsulfonyl)imide; 12. An electricity storage device comprising: Item 2: 2. The electricity storage device according to item 1, wherein the non-aqueous electrolyte solution contains 1% by mass or more of the additive A based on the total mass of the non-aqueous electrolyte solution. Item 3: 3. The electricity storage device according to item 1 or 2, wherein the additive A is vinyl benzoate, 1-ethyl-3-methylimidazolium methyl sulfate, 1-ethyl-3-methylimidazolium ethyl sulfate, 1-ethyl-3-methylimidazolium methylphosphonate, or 1-ethyl-3-methylimidazolium bis(perfluoroethylsulfonyl)imide. Item 4: The battery further comprises a positive electrode having a positive electrode active material layer and a negative electrode having a negative electrode active material layer, the positive electrode active material layer contains a lithium-nickel-cobalt-manganese composite oxide as a positive electrode active material, 4. The electricity storage device according to any one of items 1 to 3, wherein the negative electrode active material layer contains graphite as a negative electrode active material.
[0063] Although the embodiments of the technology disclosed herein have been described above, these are merely examples and do not limit the scope of the claims. The technology described in the claims includes various modifications and alterations of the specific examples exemplified above. [Explanation of symbols]
[0064] 20 Electrode body 30 cases 42 Positive terminal 44 Negative terminal 50 positive electrode 52 Positive electrode current collector foil 54 Cathode active material layer 60 negative electrode 62 Negative electrode current collecting foil 64 Negative electrode active material layer 70 Separator 80 Nonaqueous electrolyte 100 Lithium-ion secondary battery
Claims
1. An electricity storage device including a non-aqueous electrolyte, The nonaqueous electrolyte solution is a non-aqueous solvent that is a carbonate; Additive A is at least one of 2-vinylpyridine, vinyl benzoate, 3,4-thiophenedicarboxylic anhydride, 1-ethyl-3-methylimidazolium methyl sulfate, 1-ethyl-3-methylimidazolium ethyl sulfate, 1-ethyl-3-methylimidazolium methylphosphonate, and 1-ethyl-3-methylimidazolium bis(perfluoroethylsulfonyl)imide; 12. An electricity storage device comprising:
2. The electricity storage device according to claim 1 , wherein the non-aqueous electrolyte solution contains the additive A in an amount of 1 mass % or more based on the total mass of the non-aqueous electrolyte solution.
3. 3. The electricity storage device according to claim 2, wherein the additive A is vinyl benzoate, 1-ethyl-3-methylimidazolium methyl sulfate, 1-ethyl-3-methylimidazolium ethyl sulfate, 1-ethyl-3-methylimidazolium methylphosphonate, or 1-ethyl-3-methylimidazolium bis(perfluoroethylsulfonyl)imide.
4. The battery further comprises a positive electrode having a positive electrode active material layer and a negative electrode having a negative electrode active material layer, the positive electrode active material layer contains a lithium-nickel-cobalt-manganese composite oxide as a positive electrode active material, 4. The electricity storage device according to claim 1, wherein the negative electrode active material layer contains graphite as a negative electrode active material.
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Negative electrode active material for lithium ion secondary battery and lithium ion secondary battery
JP2017050142A