electrolyte
Chaotropic additives in electrolyte solutions expand the potential window and enhance properties of both aqueous and non-aqueous electrolytes, overcoming limitations in energy density and cost-effectiveness.
Patent Information
- Application Number
- JP2021554941
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2019-11-05
- Filing Date
- 2020-11-02
- Publication Date
- 2025-08-22
- Estimated Expiration
- 2040-11-02
AI Technical Summary
Aqueous electrolytes have a narrow potential window, limiting their use in high-energy density electrochemical devices, while non-aqueous electrolytes face challenges with costly and less available additives, necessitating improvements in both types to meet the demand for higher energy density and cost-effectiveness.
Incorporating chaotropic additives into electrolyte solutions, allowing for increased electrolyte salt concentration beyond saturation, expands the potential window and enhances properties of both aqueous and non-aqueous electrolytes, using readily available and inexpensive materials.
The addition of chaotropic additives to electrolytes results in wider potential windows and improved cycle characteristics for aqueous electrolytes, and increased energy density for non-aqueous electrolytes, addressing the limitations of conventional solutions.
Smart Images

Figure 0007727966000001 
Figure 0007727966000002
Abstract
Description
[Technical Field]
[0001] The present disclosure relates to an aqueous electrolyte solution, a method for producing an aqueous electrolyte solution, an electrochemical device including an aqueous electrolyte solution, and a method for producing an electrochemical device. The present disclosure also relates to a nonaqueous electrolyte solution, a method for producing a nonaqueous electrolyte solution, an electrochemical device including a nonaqueous electrolyte solution, and a method for producing an electrochemical device. [Background technology]
[0002] Compared to non-aqueous electrolytes, aqueous electrolytes are economically and safely superior, making them promising electrolytes for next-generation electrochemical devices. However, compared to non-aqueous electrolytes, which have a potential window of approximately 4 V, aqueous electrolytes have a very narrow potential window. As a result, it has not been possible to construct electrochemical devices that exhibit sufficient energy density using aqueous electrolytes. In response to this, research has been conducted to expand the potential window of aqueous electrolytes.
[0003] Conventionally, a solid-electrolyte interphase (SEI) has been formed at the interface between the negative electrode current collector and the electrolyte solution to widen the reduction-side potential window of the aqueous electrolyte solution (see, for example, Patent Documents 1 to 3). Furthermore, by using a concentrated aqueous electrolyte solution in which NaClO4 is dissolved to a saturated concentration as the electrolyte, the potential window is expanded by forming an SEI, and the number of water molecules coordinated to the cations is increased, thereby expanding the potential window (see, for example, Non-Patent Document 1). On the other hand, non-aqueous electrolytes are capable of providing higher energy than aqueous electrolytes, and are therefore widely used as electrolytes in electrochemical devices such as capacitors and lithium secondary batteries. As portable electronic devices become smaller and lighter, there is an increasing demand for higher energy electrochemical devices. To meet this demand, efforts are being made to improve the properties of non-aqueous electrolytes to further increase the energy output of electrochemical devices.
[0004] For example, studies have been conducted to increase the energy content of non-aqueous electrolytes by widening the potential window using fluorine-containing carbonate compounds such as (2-fluoro-1-methylethyl)methyl carbonate as a solvent (see, for example, Patent Document 4). Furthermore, studies have been conducted to increase the energy content of non-aqueous electrolytes containing commonly used solvents such as ethylene carbonate by improving their storage and cycle characteristics through the use of additives such as benzotrifluoride and diisocyanate compounds (see, for example, Patent Document 5). Furthermore, studies have been conducted to increase the energy content of non-aqueous electrolytes containing solvents such as ethylene carbonate by using triphenyl phosphate and its derivatives as additives to improve the balance between the capacity and resistance of non-aqueous electrolytes containing solvents such as ethylene carbonate (see, for example, Patent Document 6). Furthermore, in order to improve the solid electrolyte interphase (SEI), a specific silicon compound is added to the electrolyte solution, and improvements in cycle characteristics, etc., are being considered to increase the energy density (see, for example, Patent Document 7). [Prior art documents] [Patent documents]
[0005] [Patent Document 1] Special Publication No. 2018-530141 [Patent Document 2] Japanese Patent Application Publication No. 2019-021514 [Patent Document 3] Japanese Patent Application Publication No. 2019-029077 [Patent Document 4] International Publication No. 2005 / 123656 [Patent Document 5] International Publication No. 2011 / 142276 [Patent Document 6] Japanese Patent Application Publication No. 2017-098101 [Patent Document 7] Japanese Patent Application Laid-Open No. 2004-087459 [Non-patent literature]
[0006] [Non-Patent Document 1] Electrochemistry, 87(2019)220-226 Summary of the Invention [Problem to be solved by the invention]
[0007] However, although the aqueous electrolyte solutions described in the above documents have an enlarged potential window, the potential window of the aqueous electrolyte solution is not a sufficient potential region from the viewpoint of practical application, and there is room for further improvement. In particular, when a concentrated aqueous electrolyte solution such as that described in Non-Patent Document 1 is used, there is a limit to the solubility of the electrolyte salt in the solvent, and since the electrolyte concentration has already reached a saturated concentration, it is impossible to enlarge the potential window by further increasing the concentration. Therefore, one object of the present disclosure is to provide an aqueous electrolyte solution with an expanded potential window, particularly an aqueous electrolyte solution with a potential window that is even wider than the potential window exhibited by a conventional concentrated aqueous electrolyte solution, and another object is to provide an aqueous electrolyte solution that can improve the cycle characteristics of a sodium secondary battery, and a sodium secondary battery using the same. On the other hand, non-aqueous electrolytes that enable higher energy by improving various properties such as widening of the potential window, storage characteristics, or cycle characteristics have been studied and provided. However, the electrolyte solution disclosed in Patent Document 4 uses a special compound as the solvent, making it difficult to use it as a substitute for commonly used hydrocarbon carbonates.Furthermore, the compounds disclosed in Patent Documents 5 and 6 are not commonly used, and from the viewpoints of availability and raw material costs, it is difficult to apply them to industrial non-aqueous electrolyte solutions. Furthermore, in view of the wide variety of applications of electrolyte solutions, there is still a demand for non-aqueous electrolyte solutions with better properties. Therefore, another object of the present disclosure is to provide a nonaqueous electrolyte solution that uses readily available, inexpensive materials to further improve the properties of the nonaqueous electrolyte solution and enable a higher energy density. [Means for solving the problem]
[0008] The present inventors have investigated the expansion of the potential window of aqueous electrolytes and the enhancement of energy by improving the properties of non-aqueous electrolytes, using an approach different from the expansion of the potential window by forming an SEI, which has conventionally been the focus of attention and widely studied. As additives for non-aqueous electrolyte solutions and aqueous electrolyte solutions (hereinafter, these will also be collectively referred to simply as "electrolytes") in electrochemical devices such as secondary batteries, additives that solve problems unique to the field of electrochemistry, such as overcharge prevention effects, negative electrode film formation effects, and positive electrode protection effects, have conventionally been used. However, the present inventors have focused on substances that are completely different from the additives commonly known in the field of electrochemistry. The present inventors focused on chaotropic substances, which are known to denature biopolymers such as DNA and proteins, and added these chaotropic substances as additives to electrolyte solutions. They found that the addition of chaotropic additives to electrolyte solutions does not cause any adverse effects on the redox system of electrochemical devices, and that the chaotropic additives effectively function as additives that can improve the properties of non-aqueous electrolyte solutions and achieve high energy, and also effectively function as additives that can expand the potential window of aqueous electrolyte solutions. The present inventors have newly discovered that by allowing a chaotropic additive to coexist with an electrolyte salt, the concentration of the electrolyte salt in an aqueous electrolyte can be further increased, and the potential window of the aqueous electrolyte can be further expanded; in particular, for a concentrated aqueous electrolyte, the concentration of the electrolyte salt can be increased beyond the saturated concentration of the electrolyte salt exhibited by the concentrated aqueous electrolyte, and the potential window can be further expanded beyond that exhibited by the concentrated aqueous electrolyte. As a result, the present inventors have completed the invention of the present disclosure, which is a novel aqueous electrolyte solution using a chaotropic additive, which is unique as an additive in the field of electrochemistry. Furthermore, the present inventors have newly discovered that by allowing a chaotropic additive to coexist with an electrolyte salt, the concentration of the electrolyte salt in a non-aqueous electrolyte solution can be further increased, thereby improving (enhancing) the properties of the non-aqueous electrolyte solution; in particular, for a concentrated non-aqueous electrolyte solution in which the electrolyte has been highly concentrated up to a saturated concentration, the concentration of the electrolyte salt can be increased beyond the saturated concentration of the electrolyte salt exhibited by the concentrated non-aqueous electrolyte solution, thereby further improving (enhancing) the properties exhibited by the concentrated non-aqueous electrolyte solution. As a result, the present disclosure has been completed, which is a novel non-aqueous electrolyte solution using a chaotropic additive, which is unique as an additive in the field of electrochemistry. That is, the present invention is as defined in the claims, and the gist of the present disclosure is as follows.
[0009] [1] An electrolyte solution comprising at least one salt selected from the group consisting of sodium, magnesium, potassium, and lithium, and a chaotropic additive. [2] The electrolyte solution according to [1] above, wherein the salt is at least one selected from the group consisting of sulfates, nitrates, acetates, chlorates, perchlorates, hypochlorites, hydroxide salts, chloride salts, fluoride salts, and imide salts, and includes at least one selected from the group consisting of sodium, magnesium, potassium, and lithium. [3] The electrolytic solution according to the above [1] or [2], wherein the mass concentration of the salt relative to the electrolytic solution is 1 mol / kg or more and 30 mol / kg or less. [4] The electrolyte solution according to any one of the above [1] to [3], wherein the chaotropic additive is at least one selected from the group consisting of amines, alcohols, and acids that exhibit chaotropic properties. [5] The electrolyte solution according to any one of the above [1] to [4], wherein the chaotropic additive is at least one of an amine and an alcohol that exhibits chaotropic properties. [6] The electrolyte solution according to any one of the above [1] to [5], wherein the chaotropic additive is at least one selected from the group consisting of urea, thiourea, acetamide, trifluoroacetamide, 1,1-dimethylurea, guanidium, and guanidium salts. [7] The electrolytic solution according to any one of the above [1] to [6], wherein the electrolytic solution is an aqueous electrolytic solution. [8] The electrolyte solution according to any one of the above [1] to [6], wherein the electrolyte solution is a non-aqueous electrolyte solution. [9] A method for producing the electrolyte solution according to any one of the above [1] to [8], comprising a step of mixing at least one salt selected from the group consisting of sodium, magnesium, potassium and lithium with a chaotropic additive.
[10] An electrochemical device comprising the electrolyte solution according to any one of [1] to [8] above.
[11] A method for producing an electrochemical device, characterized by using the electrolytic solution according to any one of the above [1] to [8]. [Effects of the Invention]
[0010] According to the present disclosure, it is possible to provide an aqueous electrolyte solution with an expanded potential window, particularly an aqueous electrolyte solution with an expanded potential window greater than that of a conventional concentrated aqueous electrolyte solution, and an aqueous electrolyte solution that can improve cycle characteristics. Furthermore, according to the present disclosure, it is possible to provide a nonaqueous electrolyte solution that can further improve the characteristics of a nonaqueous electrolyte solution and enable a higher energy density by using inexpensive materials that are readily available. [Brief explanation of the drawings]
[0011] [Figure 1] FIG. 1 is a graph showing the charge-discharge cycle characteristics of the sodium secondary batteries of Examples 1-3 and Comparative Examples 1-5. [Figure 2] FIG. 2 is a graph showing linear sweep voltammograms of the nonaqueous magnesium electrolyte solutions of Example 2-1 and Comparative Example 2-1. DETAILED DESCRIPTION OF THE INVENTION
[0012] The following provides a detailed description of the electrolytic solution, the method for manufacturing the electrolytic solution, the electrochemical device including the electrolytic solution, and the method for manufacturing the electrochemical device. However, the following description of the constituent elements is an example (representative example) of one embodiment of the present disclosure, and is not intended to limit the scope of the present disclosure. In this specification, the expression of a numerical range, for example, "1 to 100," includes both the lower limit "1" and the upper limit "100."
[0013] (electrolyte) The electrolyte solution of this embodiment is characterized by containing at least one salt selected from the group consisting of sodium, magnesium, potassium, and lithium, preferably at least one salt selected from the group consisting of sodium, magnesium, and lithium (hereinafter also referred to as "electrolyte salt"), and a chaotropic additive. The aqueous electrolyte solution of this embodiment contains a chaotropic additive, which allows the potential window to be enlarged compared to an aqueous electrolyte solution that does not contain a chaotropic additive. Furthermore, the nonaqueous electrolyte solution of this embodiment contains a chaotropic additive, which further improves the properties of the nonaqueous electrolyte solution compared to a nonaqueous electrolyte solution that does not contain a chaotropic additive, thereby enabling a higher energy density to be achieved.
[0014] In this specification, the term "aqueous electrolyte" refers to an aqueous solution having electrical conductivity, preferably an aqueous solution used as an electrolyte for an electrochemical device, more preferably an aqueous solution used as an electrolyte for a charge / discharge device. The aqueous electrolyte solution of this embodiment contains water as the main solvent, and preferably contains only water. For example, the aqueous electrolyte solution of this embodiment may contain water having an electrical resistance of 1 mS or less at room temperature. Specific examples of water include distilled water, ion-exchanged water, pure water, and ultrapure water. In addition, in this specification, the term "non-aqueous electrolyte solution" refers to a non-aqueous solution having electrical conductivity, preferably a non-aqueous solution used as an electrolyte solution for electrochemical devices, more preferably a non-aqueous solution used as an electrolyte solution for charge / discharge devices. The nonaqueous electrolyte solution of this embodiment preferably contains a nonaqueous solvent as the main solvent, and preferably contains only a nonaqueous solvent.
[0015] <Non-aqueous solvent> Examples of the non-aqueous solvent include organic solvents such as esters, ethers, carbonates, nitriles, sulfolane, furans, and dioxolanes. More specifically, examples include carbonates such as ethylene carbonate, propylene carbonate, vinylene carbonate, butylene carbonate, chloroethylene carbonate, dimethyl carbonate, ethyl methyl carbonate, diethyl carbonate, ethyl-n-butyl carbonate, methyl-t-butyl carbonate, di-i-propyl carbonate, and t-butyl-i-propyl carbonate, esters such as γ-butyl lactone, γ-valerolactone, methyl formate, methyl acetate, ethyl acetate, and methyl butyrate, ethers such as dimethoxyethane, ethoxymethoxyethane, and diethoxyethane, nitriles such as acetonitrile and benzonitrile, furans such as tetrahydrofuran and methyltetrahydrofuran, sulfolanes such as sulfolane and tetramethylsulfolane, and dioxolanes such as 1,3-dioxolane and methyldioxolane. These non-aqueous solvents may be used alone or in combination of two or more.
[0016] <Electrolyte salt> The electrolyte salt used in the electrolytic solution of this embodiment is not particularly limited as long as it contains a salt that functions as an electrolyte. Specific examples of the electrolyte salt include sulfates, nitrates, acetates, chlorates, perchlorates, hypochlorites, hydroxide salts, chloride salts, fluorides, and imide salts containing cations such as sodium, magnesium, potassium, and lithium, preferably sodium, magnesium, and lithium (hereinafter also referred to as "charge / discharge cations"). Among these, chlorates, perchlorates, hypochlorites, hydroxide salts, and chloride salts containing charge / discharge cations are preferred, and chlorates, perchlorates, and hypochlorites containing charge / discharge cations are more preferred.
[0017] As described above, examples of the charge / discharge cation include sodium, magnesium, potassium, and lithium, and more preferably sodium, magnesium, and lithium. Among these, one or more selected from the group consisting of sodium, magnesium, and potassium are preferred, with at least one of sodium and magnesium being preferred, and sodium being more preferred. In another embodiment, at least one of sodium and potassium is preferred, with potassium being more preferred.
[0018] Specific examples of electrolyte salts using sodium as the charge / discharge cation include sodium hexafluorophosphate, sodium tetrafluoroborate, sodium trifluoromethanesulfonate, sodium sulfate, sodium nitrate, sodium acetate, sodium chlorate, sodium perchlorate, sodium hypochlorite, sodium hydroxide, sodium chloride, sodium fluoride, sodium bis(fluorosulfonyl)imide, sodium bis(trifluoromethanesulfonyl)imide, and sodium bis(pentafluoroethanesulfonyl)imide. Among these, sodium chlorate, sodium perchlorate, sodium hypochlorite, sodium hydroxide, and sodium chloride are preferred, and sodium chlorate, sodium perchlorate, and sodium hypochlorite are more preferred. These electrolyte salts may be used alone or in combination of two or more.
[0019] Specific examples of electrolyte salts using magnesium as the charge / discharge cation include magnesium trifluoromethanesulfonate, magnesium sulfate, magnesium nitrate, magnesium acetate, magnesium chlorate, magnesium perchlorate, magnesium hypochlorite, magnesium hydroxide, magnesium chloride, magnesium fluoride, magnesium bis(fluorosulfonyl)imide, magnesium bis(trifluoromethanesulfonyl)imide, and magnesium bis(pentafluoroethanesulfonyl)imide. Among these, magnesium chlorate, magnesium perchlorate, magnesium hypochlorite, magnesium hydroxide, and magnesium chloride are preferred, and magnesium chlorate, magnesium perchlorate, and magnesium hypochlorite are more preferred. These electrolyte salts may be used alone or in combination of two or more. Specific examples of electrolyte salts using potassium as the charge / discharge cation include potassium hexafluorophosphate, potassium tetrafluoroborate, potassium trifluoromethanesulfonate, potassium sulfate, potassium nitrate, potassium acetate, potassium chlorate, potassium perchlorate, potassium hypochlorite, potassium hydroxide, potassium chloride, potassium fluoride, potassium bis(fluorosulfonyl)imide, potassium bis(trifluoromethanesulfonyl)imide, and potassium bis(pentafluoroethanesulfonyl)imide. Among these, potassium chlorate, potassium perchlorate, potassium hypochlorite, potassium hydroxide, and potassium chloride are preferred, and potassium chlorate, potassium perchlorate, and potassium hypochlorite are more preferred. These electrolyte salts may be used alone or in combination of two or more.
[0020] Specific examples of electrolyte salts using lithium as the charge / discharge cation include lithium hexafluorophosphate, lithium tetrafluoroborate, lithium trifluoromethanesulfonate, lithium sulfate, lithium nitrate, lithium acetate, lithium chlorate, lithium perchlorate, lithium hypochlorite, lithium hydroxide, lithium chloride, lithium fluoride, lithium bis(fluorosulfonyl)imide, lithium bis(trifluoromethanesulfonyl)imide, and lithium bis(pentafluoroethanesulfonyl)imide. Among these, lithium chlorate, lithium perchlorate, lithium hypochlorite, lithium hydroxide, and lithium chloride are preferred, and lithium chlorate, lithium perchlorate, and lithium hypochlorite are more preferred. These electrolyte salts may be used alone or in combination of two or more.
[0021] The concentration of the electrolyte salt in the electrolyte solution of this embodiment is arbitrary, but in order to obtain an electrolyte solution with a wider potential window, the concentration of the electrolyte salt is preferably a saturated concentration, and more preferably a concentration exceeding the saturated concentration. In this specification, the term "concentration exceeding the saturated concentration" refers to a concentration exceeding the maximum solubility concentration of the electrolyte salt when the electrolyte salt is dissolved alone (i.e., in the absence of a chaotropic additive) in a solvent (water in an aqueous electrolyte solution, a non-aqueous solvent in a non-aqueous electrolyte solution; the same applies hereinafter).
[0022] The concentration of the electrolyte salt in the electrolytic solution of this embodiment is preferably 1.2 times or more, more preferably 1.4 times or more, of the saturated concentration, although the solubility varies depending on the type of electrolyte salt. The concentration of the electrolyte salt in the electrolytic solution of this embodiment is preferably 4 times or less, more preferably 3.5 times or less, of the saturated concentration, although the solubility varies depending on the type of electrolyte salt. When the electrolyte salt is a perchlorate, the mass concentration of the electrolyte salt relative to the electrolyte solution is preferably 1 mol / kg or more, more preferably 5 mol / kg or more, and even more preferably 10 mol / kg or more. When the electrolyte salt is a perchlorate, the mass concentration of the electrolyte salt relative to the electrolyte solution is preferably 30 mol / kg or less, more preferably 28 mol / kg or less, and even more preferably 26 mol / kg or less.
[0023] <<Sub-electrolyte salt>> In this embodiment, the nonaqueous electrolyte solution may contain a quaternary onium salt as a secondary electrolyte salt, which tends to increase the energy density when the nonaqueous electrolyte solution of this embodiment is used as a nonaqueous electrolyte solution for an electric double layer capacitor. Specific examples of quaternary onium salts include (C2H5)4NBF4, (C2H5)4NPF6, (C2H5)4NClO4, (C2H5)4PBF4, (C2H5)4PPF6, (C2H5)4PClO4, (C3H7)4PBF4, (C3H7)4PPF6, (C3H7)4PClO4, (C3H7)4NBF4, (C3H7)4NPF6, (C3H7)4NClO4, (CH3)4NBF4, (CH3)4NPF6, (CH3)4NClO4, (CH3)4PBF4, (CH3)4PPF6, and (CH3)4PClO4. Among these, (C2H5)4NBF4, (C2H5)4NPF6, (C2H5)4NClO4, (CH3)4NBF4, (CH3)4NPF6 and (CH3)4NClO4 are preferred. These secondary electrolyte salts may be used alone or in combination of two or more.
[0024] <Chaotropic additives> Chaotropic additives are substances that denature biopolymers such as DNA and proteins, and are compounds that disrupt their three-dimensional structure and biological functions by intervening in hydrogen bond networks. The chaotropic additive used in the electrolyte solution of this embodiment is a compound containing at least one of a cation and anion on the right side of the Hofmeister series, and further, a compound containing at least one of a cation and anion that exhibits chaotropic properties. In this specification, "chaotropic properties" refer to the properties possessed by chaotropic additives, and the ability to intervene in hydrogen bond networks of biopolymers, water, etc., and change their structure. Examples of chaotropic additives include amines, alcohols, acids, etc., which exhibit chaotropic properties. Among these, amines and alcohols, which have hydrogen-bonding functional groups and exhibit chaotropic properties, are preferred.
[0025] Specific examples of chaotropic additives include acetamide, N-methylacetamide, oxalic acid, malonic acid, malic acid, xylitol, urea, 1,1-dimethylurea, guanidium, guanidium salts, isosorbide, tartaric acid, tricarballylic acid, thiourea, thiocyanic acid, trifluoroacetamide, benzoic acid, itaconic acid, citric acid, imidazole, 2-imidazolidinone, 4-hydroxybenzoic acid, cinnamic acid, ethylene glycol, propylene urea, resorcinol, phenylacetic acid, D-sorbitol, lactic acid, 1,3-dimethylurea, levulinic acid, gallic acid, caffeic acid, 1-methylurea, glycerin, succinic acid, caproic acid, coumaric acid, stearic acid, adipic acid, oleic acid, Suberic Acid, linoleic acid, and decanoic acid. Among these, acetamide, N-methylacetamide, xylitol, urea, 1,1-dimethylurea, guanidium, guanidium salts, isosorbide, thiourea, trifluoroacetamide, imidazole, 2-imidazolidinone, ethylene glycol, propyleneurea, resorcinol, D-sorbitol, 1,3-dimethylurea, and glycerin are preferred. From the viewpoint of ease of handling, urea, thiourea, acetamide, trifluoroacetamide, 1,1-dimethylurea, guanidium, and guanidium salts are more preferred. From the viewpoint of availability, urea and thiourea are particularly preferred, and urea is particularly preferred. These chaotropic additives may be used alone or in combination of two or more. Furthermore, since the cycle characteristics of electrochemical devices such as sodium batteries containing the chaotropic additive as an electrolyte tend to be improved, the chaotropic additive is preferably one or more selected from the group consisting of ethylene glycol, diethylene glycol, triethylene glycol, polyethylene glycol, glycerol, erythritol, and threitol, more preferably one or more selected from the group consisting of ethylene glycol and polyethylene glycol, and even more preferably ethylene glycol.
[0026] <Additives other than chaotropic additives> The electrolyte solution of the present embodiment may contain additives other than the chaotropic additive as needed to adjust the physical properties and characteristics such as storage stability, battery characteristics, etc. The content of any additive other than the chaotropic additive in the electrolyte solution is not particularly limited, but is, for example, 0.01% by mass or more and 10% by mass or less relative to the mass of the electrolyte solution.
[0027] (Characteristics of aqueous electrolyte) <Potential window> The potential window of the aqueous electrolyte solution of this embodiment may be wider than the potential window (1.23 V) of the solvent water, and is not particularly limited, but is, for example, 2.0 V or more, preferably 2.5 V or more. Furthermore, the potential window may vary depending on the charge / discharge cation contained in the electrolyte salt, and is not particularly limited, but for example, when the charge / discharge cation is sodium, the potential window is 2.4 V or more and 3.5 V or less, when the charge / discharge cation is magnesium, the potential window is 2.1 V or more and 3.0 V or less, when the charge / discharge cation is potassium, the potential window is 1.9 V or more and 2.5 V or less, and when the charge / discharge cation is lithium, the potential window is 1.3 V or more and 3.5 V or less.
[0028] <Oxygen evolution potential and hydrogen evolution potential> The oxygen generating potential and hydrogen generating potential of the aqueous electrolyte solution of this embodiment vary depending on the concentration of the electrolyte salt, but for example, at a temperature of 25° C., the oxygen generating potential is preferably 1.2 V or more, more preferably 1.4 V or more, relative to a silver / silver chloride electrode. For example, at a temperature of 25° C., the hydrogen generating potential is preferably −1.0 V or less, more preferably −1.2 V or less, relative to a silver / silver chloride electrode. The aqueous electrolyte solution of this embodiment is thought to suppress oxygen and hydrogen generation due to the chaotropic effect obtained by the coexistence of the chaotropic additive and the electrolyte salt in the aqueous electrolyte solution. At the same time, it is thought that the potential window may also be expanded by the formation of a passive film, called an SEI, on the negative electrode current collector due to cation deposition during charge and discharge.
[0029] (Characteristics of non-aqueous electrolytes) The nonaqueous electrolyte solution of the present embodiment can improve properties such as widening the potential window compared to, for example, a nonaqueous electrolyte solution having a similar concentration of electrolyte salt but not containing a chaotropic additive, and this improvement in properties can realize a higher energy density.
[0030] It is believed that the nonaqueous electrolyte solution of the present embodiment suppresses decomposition of the nonaqueous solvent due to a chaotropic effect obtained by the coexistence of a chaotropic additive and an electrolyte salt in the nonaqueous electrolyte solution, and furthermore, it is believed that the formation of an SEI, which is a passive film, on the negative electrode current collector due to cation deposition accompanying charge and discharge may occur in some cases.
[0031] (Electrolyte solution manufacturing method) The aqueous electrolyte solution of this embodiment may be produced by any method, as long as the electrolyte salt, the chaotropic additive, and the solvent are mixed together. Examples of the mixing method include a method of mixing the electrolyte salt, the chaotropic additive, and the solvent to achieve a desired electrolyte concentration, a method of dissolving the electrolyte salt and the chaotropic additive in a solvent and then diluting the resulting solution to achieve a desired electrolyte concentration, and a method of mixing the chaotropic additive and the solvent and then mixing the electrolyte salt.
[0032] As a specific example of a method for producing the electrolyte solution of this embodiment, for example, an electrolyte salt and a chaotropic additive are added to a solvent (pure water for an aqueous electrolyte solution, or a non-aqueous solvent for a non-aqueous electrolyte solution), and the mixture is stirred at room temperature (e.g., 20 to 30°C) until the electrolyte salt and the chaotropic additive are dissolved. In particular, when a concentrated solution is prepared, it is preferable to remove the precipitated salt by filtration or the like.
[0033] (Electrochemical Devices) The electrochemical device of this embodiment may include the electrolyte solution of this embodiment. In this specification, the term "electrochemical device" refers to a device that converts chemical energy into electrical energy, and examples thereof include capacitors, air batteries, primary batteries, and secondary batteries. Examples of such devices include charge / discharge devices, such as capacitors or secondary batteries, and more preferably secondary batteries. When applied to these applications, if the electrolyte solution of this embodiment is an aqueous electrolyte solution, the aqueous electrolyte solution can be considered as an aqueous electrolyte solution for electrochemical devices, an aqueous electrolyte solution for charge / discharge devices, an aqueous electrolyte solution for capacitors, an aqueous electrolyte solution for air batteries, an aqueous electrolyte solution for primary batteries, an aqueous electrolyte solution for secondary batteries, etc. On the other hand, if the electrolyte solution of this embodiment is a nonaqueous electrolyte solution, it can be considered as a nonaqueous electrolyte solution for electrochemical devices, a nonaqueous electrolyte solution for charge / discharge devices, a nonaqueous electrolyte solution for capacitors, a nonaqueous electrolyte solution for air batteries, a nonaqueous electrolyte solution for primary batteries, a nonaqueous electrolyte solution for secondary batteries, etc. Hereinafter, a secondary battery will be shown as an example to explain an electrochemical device including the electrolyte solution of this embodiment.
[0034] <Secondary battery> The secondary battery of this embodiment may include the above-described electrolytic solution of this embodiment. The secondary battery of this embodiment includes an electrolyte solution containing at least one salt selected from the group consisting of sodium, magnesium, potassium, and lithium, preferably at least one salt selected from the group consisting of sodium, magnesium, and lithium, and a chaotropic additive, a positive electrode, and a negative electrode. The secondary battery of this embodiment is a so-called aqueous secondary battery when the electrolyte is an aqueous electrolyte, and is a so-called nonaqueous secondary battery when the electrolyte is a nonaqueous electrolyte. When the electrolyte salt is a sodium salt, it is a sodium secondary battery or a sodium ion battery. When the electrolyte salt is a magnesium salt, it is a magnesium secondary battery or a magnesium ion battery. When the electrolyte salt is a potassium salt, it is a potassium secondary battery or potassium It can also be considered a lithium secondary battery or a lithium ion battery, and when the electrolyte salt is a salt of lithium.
[0035] <Positive electrode> The positive electrode in the secondary battery of this embodiment includes at least a positive electrode active material layer containing a positive electrode active material. The positive electrode active material may be any material capable of inserting and extracting charge-discharge cations or capable of reversibly forming a compound with charge-discharge cations, and any positive electrode active material used in known secondary batteries may be used. The positive electrode active material is preferably capable of reversibly inserting and extracting as many cations as possible in a potential range in which oxygen is not generated by electrolysis of the solvent.
[0036] Examples of the positive electrode active material include oxides, fluorides, halides, polyanion compounds, Prussian blue, Prussian blue analogs, and organic compounds. Among these, fluorides, Prussian blue, Prussian blue analogs, and polyanion compounds are preferred. In this specification, a Prussian blue analog is a compound in which one or more Fe atoms in Prussian blue (Fe4[Fe(CN)6]3) are substituted with a transition metal element other than Fe.
[0037] As a specific example of the positive electrode active material, when the charge / discharge cation is sodium, for example, Na 0.44 MnO2, MnO2, Na 2.7 Ru4O9, Na2FeP2O7, NaCo 1 / 3 Ni 1 / 3 Mn 1 / 3 PO4, Na X FePO4, Na X Examples of the positive electrode active material include MnPO4, Na3FePO4CO3, Na3MnPO4CO3, Na2FePO4F, Na2MnPO4F, Na3V2(PO4)3, NaVPO4F, Na2Mn[Mn(CN)6], and Na2Mn[Fe(CN)6]. Among these, Na3FePO4CO3, Na2FePO4F, Na3V2(PO4)3, NaVPO4F, Na2Mn[Mn(CN)6], and Na2Mn[Fe(CN)6] are preferred. These positive electrode active materials may be used alone or in combination of two or more.
[0038] Specific examples of the positive electrode active material when the charge / discharge cation is magnesium include MgFeMn2O4, MgMn2O4, MgFeSiO4, MgMnSiO4, MgFePO4F, MgMnPO4F, and Mg X LiV2(PO4)3, nickel hexacyanoferrate (NiHCF), etc. Among these, MgFeSiO 4、 MgFePO4F and Mg X LiV2(PO4)3 is preferred. These positive electrode active materials may be used alone or in combination of two or more.
[0039] As a specific example of the positive electrode active material, when the charge / discharge cation is potassium, for example, K 0.44 MnO2, MnO2, K2FeP2O7, KCo 1 / 3 Ni 1 / 3 Mn 1 / 3 PO4, K X FePO4, K X Examples of the positive electrode active material include MnPO4, K2FePO4F, K2MnPO4F, K2CoPO4F, K3V2(PO4)3, KVPO4F, K2Mn[Mn(CN)6], and K2Mn[Fe(CN)6]. Among these, K2FePO4F, K3V2(PO4)3, KVPO4F, K2Mn[Mn(CN)6], and K2Mn[Fe(CN)6] are preferred. These positive electrode active materials may be used alone or in combination of two or more.
[0040] Specific examples of the positive electrode active material when the charge / discharge cation is lithium include LiMn2O4, LiMnO2, MnO2, LiCoO2, and LiNi 1 / 3 Co 1 / 3 Mn 1 / 3 O2, Na 1.16 V3O8, LiFePO4, FePO4, LiMnPO4, Li(Fe,Mn)PO4, LiCoPO4, LiNiPO4, LiCo 1 / 2 Ni 1 / 2PO4, Li2FePO4F, Li2MnPO4F, Li3FePO4CO3, and Li3MnPO4CO3. Among these, LiMn2O4, LiFePO4, Li2FePO4F, and Li3FePO4CO3 are preferred. These positive electrode active materials may be used alone or in combination of two or more.
[0041] The physical properties of the positive electrode active material, such as particle size and specific surface area, may be adjusted appropriately depending on the purpose.
[0042] The positive electrode active material layer may contain, for example, a binder, a conductive material, an additive, and the like.
[0043] The binder may be any binder used in the positive electrode of a secondary battery, and examples thereof include fluorine-based resins such as polyvinylidene fluoride (PVDF), polytetrafluoroethylene (PTFE), and ethylene tetrafluoroethylene (ETFE), polyethylene, polypropylene, SBR-based materials, and imide-based materials.
[0044] The conductive material may be any conductive material used in the positive electrode of a secondary battery, and examples thereof include conductive fibers of at least one of carbon materials and metal fibers, metal powders such as copper, silver, nickel, and aluminum, organic conductive materials such as polyphenylene derivatives, etc. Examples of carbon materials include graphite, soft carbon, hard carbon, carbon black, ketjen black, acetylene black, graphite, activated carbon, carbon nanotubes, carbon fibers, synthetic resins containing aromatic rings, mesoporous carbon obtained by burning petroleum pitch, etc.
[0045] <<Negative electrode>> The negative electrode in the secondary battery of this embodiment includes at least a negative electrode active material layer containing a negative electrode active material. The negative electrode active material can be any negative electrode active material used in secondary batteries, and examples thereof include substances capable of inserting and extracting charge-discharge cations, substances that reversibly form compounds with charge-discharge cations, and substances that reversibly alloy with charge-discharge cations. Examples include platinum, zinc, carbon materials, materials that form alloys with charge-discharge cations, transition metal oxides containing charge-discharge cations, polyanion materials containing charge-discharge cations, Prussian blue, Prussian blue analogs, and organic compounds. Among these, carbon materials, polyimides, transition metal-containing cyano compounds, and transition metal-containing polyanion compounds, Prussian blue, and Prussian blue analogs, are preferred.
[0046] Specific examples of the negative electrode active material include activated carbon as a carbon material when the charge / discharge cation is sodium, and Na2Mn[Mn(CN)6] and K as transition metal-containing cyano compounds. 0.11 Mn[Mn(CN)6] 0.38 Examples of transition metal-containing polyanion compounds include NaTi2(PO4)3 and Na2V6O 16 nH2O and C 14 H 10 N2O6, etc. Among these, NaTi2(PO4)3 is preferred. These negative electrode active materials may be used alone or in combination of two or more.
[0047] As a specific example of the negative electrode active material, when the charge / discharge cation is magnesium, for example, Mg 1.5 MnO2, MgMn2O4, Mo6S8, Mg 1.03 Mn 0.97 Examples include SiO4, polypyromellitic anhydride (PPMDA), CuFeHCF, and NiHCF. Among these, Mg 1.03 Mn 0.97 SiO4, polypyromellitic anhydride (PPMDA), and nickel hexacyanoferrate (NiHCF) are preferred. These negative electrode active materials may be used alone or in combination of two or more.
[0048] As a specific example of the negative electrode active material, when the charge / discharge cation is potassium, activated carbon is used as the carbon material, K2C8H4O4 is used as the organic compound, and C 14 H 10 Examples of transition metal-containing cyano compounds include KMn[Mn(CN)] and K 0.11 Mn[Mn(CN)6] 0.38 Examples of the transition metal-containing polyanion compound include KTi2(PO4)3. Among these, KTi2(PO4)3 is preferred. These negative electrode active materials may be used alone or in combination of two or more.
[0049] Specific examples of the negative electrode active material when the charge / discharge cation is lithium include graphite, hard carbon, MCMB, Si, SiO, and Li4Ti5O 12 , VO2(B), Li2Mn2O4, γ-LiV3O8, H2V2O8, Na 1+x Examples include V3O8, VO2, V2O5, TiO2, TiP2O7, LiTi2(PO4)3, polypyrrole, and polyimide. Among these, graphite, Si, TiO2, and Li4Ti5O 12 These negative electrode active materials may be used singly or in combination of two or more.
[0050] Particle size, specific surface area, etc. negative electrode active material The physical properties of the polymer may be adjusted appropriately depending on the purpose.
[0051] The negative electrode active material layer may contain, for example, a binder, a conductive material, an additive, etc. The binder, conductive material, and additive may be the same as those contained in the positive electrode active material layer.
[0052] Other components of the secondary battery of this embodiment, such as the separator, positive electrode current collector, negative electrode current collector, casing, and lead, can be those used in known secondary batteries. For example, the separator may be any separator that is permeable to cations and electrically separates the positive electrode and the negative electrode, and may be a separator used in batteries containing an electrolyte. Specific examples of separators include porous membranes such as polyethylene porous membranes, polypropylene porous membranes, polytetrafluoroethylene porous membranes, aramid resin porous membranes, and ceramic porous membranes, as well as nonwoven fabric membranes such as polyethylene nonwoven fabrics, polypropylene nonwoven fabrics, glass fiber nonwoven fabrics, and cellulose nonwoven fabrics. The secondary battery of this embodiment can be manufactured by any method, and known methods can be used. [Example]
[0053] The present embodiment will be described below with reference to examples, but the present embodiment is not limited to the following examples.
[0054] <Evaluation of aqueous electrolyte> The potential windows of the aqueous electrolyte solutions in Examples 1-1 and 1-2 and Comparative Examples 1-1 to 1-4 were measured by linear sweep voltammetry under the following measurement conditions. Working electrode: Ti mesh (product name: Expand Metal, manufactured by Thank Metal Co., Ltd.) Counter electrode: Zinc plate (product name: ZN483384, manufactured by Nilaco Corporation) Reference electrode: Silver / silver chloride electrode (product name: RE-1CP, manufactured by BAS) Potential scanning rate: 0.5 mV / sec Measurement temperature: 25℃ Measurement device: Potentio-galvanostat (Device name: Versastat3, manufactured by AMETEK)
[0055] (Example 1-1) Urea was dissolved in water to obtain a urea solution with a urea concentration of 18 mol / kg. NaClO4 was dissolved in the urea solution at room temperature until it reached saturation, yielding an aqueous electrolyte with a urea concentration of 18 mol / kg and a NaClO4 concentration of 25 mol / kg. The resulting aqueous electrolyte had a hydrogen evolution potential of −1.45 V, an oxygen evolution potential of 1.54 V, and a potential window of 2.99 V.
[0056] (Comparative Example 1-1) At room temperature, NaClO4 was dissolved in water until saturated, to obtain an aqueous electrolyte solution with a NaClO4 concentration of 17 mol / kg. The resulting aqueous electrolyte had a hydrogen evolution potential of −0.62 V, an oxygen evolution potential of 1.86 V, and a potential window of 2.48 V. A comparison between Example 1-1 and Comparative Example 1-1 confirmed that the inclusion of urea caused the electrolyte salt to exceed its saturated concentration and dissolve to a concentration 1.17 times the saturated concentration, and further confirmed that both the oxygen generating potential and the hydrogen generating potential were broadened, thereby expanding the potential window.
[0057] (Comparative Example 1-1a) NaClO4 was dissolved in water at room temperature until saturated, yielding an aqueous electrolyte with a NaClO4 concentration of 17 mol / kg. Adding ammonium sulfate to the electrolyte resulted in the precipitation of salt. The supernatant had a hydrogen evolution potential of -0.30 V, an oxygen evolution potential of 1.30 V, and a potential window of 1.60 V.
[0058] (Example 1-2) Urea was dissolved in water to obtain a urea solution with a urea concentration of 25 mol / kg. Mg(ClO4)2 was dissolved in the urea solution at room temperature until it reached saturation, yielding an aqueous electrolyte with a urea concentration of 25 mol / kg and a Mg(ClO4)2 concentration of 14 mol / kg. The resulting aqueous electrolyte had a hydrogen evolution potential of −1.00 V, an oxygen evolution potential of 1.50 V, and a potential window of 2.50 V.
[0059] (Comparative Example 1-2) Mg(ClO4)2 was dissolved in water at room temperature until saturated, to obtain an aqueous electrolyte with a Mg(ClO4)2 concentration of 4 mol / kg. The resulting aqueous electrolyte had a hydrogen evolution potential of −0.60 V, an oxygen evolution potential of 1.50 V, and a potential window of 2.10 V. Comparison with Example 1-2 confirmed that the inclusion of urea caused the electrolyte salt to dissolve to a concentration exceeding the saturated concentration, at 3.5 times or more the saturated concentration, and furthermore, broadened the hydrogen generation potential and expanded the potential window.
[0060] (Comparative Examples 1-3) Magnesium bis(trifluoromethanesulfonyl)imide (Mg(TFSI)2) was dissolved in water at room temperature to obtain an aqueous electrolyte solution with a Mg(TFSI)2 concentration of 4 mol / kg. The resulting aqueous electrolyte had a hydrogen evolution potential of −0.9 V, an oxygen evolution potential of 1.1 V, and a potential window of 2.0 V. Comparison with Example 1-2 confirmed that Mg(TFSI)2 did not increase the oxygen evolution potential.
[0061] (Comparative Examples 1-4) Magnesium sulfate (MgSO4) was dissolved in water at room temperature to obtain an aqueous electrolyte solution with an MgSO4 concentration of 1 mol / kg. The resulting aqueous electrolyte had a hydrogen evolution potential of −0.4 V, an oxygen evolution potential of 0.9 V, and a potential window of 1.3 V.
[0062] <Evaluation of electrochemical devices with aqueous electrolyte> (Examples 1-3) A sodium secondary battery was fabricated using an aqueous electrolyte solution obtained in the same manner as in Example 1-1 as the electrolyte solution, a hydrate of a Prussian blue analogue represented by the general formula NaMn[Fe(CN)6] (hereinafter also referred to as "NMHCF") synthesized by a coprecipitation method as the positive electrode active material, and a Prussian blue analogue represented by the general formula KMn[Cr(CN)6] (hereinafter also referred to as "KMHCC") synthesized by a coprecipitation method as the negative electrode active material. The configuration of the fabricated sodium secondary battery is shown below. Cathode active material: NMHCF Negative electrode active material: KMHCC Mass ratio: NMHCF / KMHCC=2 / 3 Current collector: Ti mesh The sodium secondary battery equipped with the aqueous electrolyte was connected to a charge / discharge device (device name: charge / discharge device BTS2004H, manufactured by Nagano Corporation), and a charge / discharge test was carried out under the following conditions. The results are shown in Figure 1. Measurement mode: Constant current charge / discharge Current value: 5mA / cm 2 Measurement voltage: 0V~2V
[0063] (Comparative Examples 1-5) A sodium secondary battery was fabricated in the same manner as in Example 1-3, except that the aqueous electrolyte solution obtained in the same manner as in Comparative Example 1-1 was used as the electrolyte solution, and a charge-discharge test was performed. The results are shown in Figure 1.
[0064] 1, it was confirmed that the sodium secondary battery of Example 1-3 had a higher discharge capacity after 300 charge / discharge cycles than the sodium secondary battery of Comparative Example 1-5. This confirmed that the aqueous electrolyte solution of this embodiment can also contribute to improving cycle characteristics.
[0065] (Examples 1-4) Dissolve ethylene glycol in water and check the ethylene glycol concentration. 25 At room temperature, NaClO4 was dissolved in the ethylene glycol water until saturated, yielding an aqueous electrolyte with an ethylene glycol concentration of 25 mol / kg and a NaClO4 concentration of 27 mol / kg. The resulting aqueous electrolyte had a hydrogen evolution potential of −0.62 V, an oxygen evolution potential of 1.86 V, and a potential window of 2.48 V. A sodium secondary battery was fabricated in the same manner as in Example 1-3, except that the obtained electrolyte solution was used and the mass ratio of the positive electrode to the negative electrode was set to NMHCF / KMHCC=1 / 2, and a charge-discharge test was performed. The aqueous electrolyte solution of this example had a potential window equivalent to that of the aqueous electrolyte solution of Comparative Example 1-1. Nevertheless, the discharge capacity of the sodium secondary battery of this example after 300 charge / discharge cycles was 1.5 times that of the sodium secondary battery of Comparative Example 1-1. This confirmed that ethylene glycol had the effect of improving cycle characteristics.
[0066] (Examples 1-5) An aqueous electrolyte solution with an ethylene glycol concentration of 25 mol / kg and an NaClO4 concentration of 29 mol / kg was obtained in the same manner as in Example 1-4, except that ethylene glycol water with an ethylene glycol concentration of 25 mol / kg was used. A sodium secondary battery was fabricated in the same manner as in Example 1-4 except that the obtained electrolyte solution was used, and a charge-discharge test was carried out. The aqueous electrolyte solution of this example had a potential window equivalent to that of the aqueous electrolyte solution of Comparative Example 1-1. Nevertheless, the discharge capacity of the sodium secondary battery of this example after 100 charge / discharge cycles was 1.6 times that of the sodium secondary battery of Comparative Example 1-1. This confirmed that ethylene glycol had the effect of improving cycle characteristics.
[0067] (Examples 1 to 6) Urea was dissolved in water to obtain a urea solution with a urea concentration of 5 mol / kg. Potassium nitrate (KNO3) was dissolved in the obtained urea solution at room temperature until saturated, obtaining an aqueous electrolyte with a urea concentration of 5 mol / kg and a KNO3 concentration of 4 mol / kg. The aqueous electrolyte had a hydrogen evolution potential of -0.40 V, an oxygen evolution potential of 1.50 V, and a potential window of 1.90 V.
[0068] (Comparative Examples 1-6) KNO was dissolved in water at room temperature until saturated, yielding an aqueous electrolyte with a KNO concentration of 3 mol / kg. The resulting aqueous electrolyte had a hydrogen evolution potential of -0.40 V, an oxygen evolution potential of 1.40 V, and a potential window of 1.80 V. From Examples 1-6 and Comparative Examples 1-6, it was found that by including urea, even when a potassium salt was used as the electrolyte salt, the electrolyte salt was dissolved in a concentration exceeding the saturated concentration. 1.33 It was confirmed that the concentration of HCl was increased to twice the normal concentration, and that the potential window was expanded due to the increase in the oxygen generation potential.
[0069] <Evaluation of non-aqueous electrolyte> Example 2-1 Urea was dissolved in acetonitrile to obtain a non-aqueous solution (non-aqueous urea solution) with a urea concentration of 5 mol / kg. Mg(ClO4)2 was dissolved in the obtained non-aqueous solution at room temperature until saturated, to obtain a non-aqueous electrolyte with a urea concentration of 5 mol / kg and a Mg(ClO4)2 concentration of 5 mol / kg. A model battery of a non-aqueous magnesium battery was prepared using the obtained non-aqueous electrolyte solution. The linear sweep voltammetry of the non-aqueous electrolyte solution was evaluated using the model battery. The evaluation conditions are as follows: Working electrode and counter electrode: Ti mesh (product name: Expand Metal, manufactured by Thank Metal Co., Ltd.) Reference electrode: Silver / silver chloride electrode (product name: RE-1CP, manufactured by BAS) Potential scanning rate: 0.5 mV / sec Scanning voltage: -2.5V to 2.5V Measurement temperature: 25℃ Measurement device: Potentio-galvanostat (device name: Versastat3, AMETEK Company) As a result of the measurement, neither reduction current nor oxidation current was generated within the scanning potential range. Example 2-1 and the following Comparative Example 2-1 Linear Sweep The voltammogram is shown in FIG.
[0070] (Comparative Example 2-1) Mg(ClO4)2 was dissolved in acetonitrile at room temperature until saturated, to obtain a non-aqueous electrolyte solution with a Mg(ClO4)2 concentration of 2 mol / kg. When the obtained electrolyte was used in the same manner as in Example 2-1, an oxidation current of 1.7 V or more was The sudden rise inThis confirmed that an oxidation reaction of the solvent had occurred. A comparison between Example 2-1 and Comparative Example 2-1 confirmed that the inclusion of urea caused the electrolyte salt to exceed its saturated concentration, dissolving to a concentration 2.5 times the saturated concentration. Furthermore, in Example 2-1, no abnormal currents were observed in the reduction current or oxidation current, indicating that gas generation did not occur within the scanning potential range. Therefore, a comparison between Example 2-1 and Comparative Example 2-1 confirmed that the oxidation reaction was suppressed in a non-aqueous electrolyte solution containing urea. The inclusion of a chaotropic additive can further improve the properties of the non-aqueous electrolyte solution, providing a non-aqueous electrolyte solution that enables a higher energy density.
[0071] This application claims priority to Japanese Patent Application No. 2019-200700, filed on November 5, 2019, and Japanese Patent Application No. 2019-200778, filed on November 5, 2019, and incorporates all of the contents of those Japanese patent applications by reference. [Explanation of symbols]
[0072] 1: Examples 1-3 2: Comparative Examples 1-5 3: Example 2-1 4: Comparative Example 2-1
Claims
1. An aqueous electrolyte comprising a sodium salt and urea as a chaotropic additive.
2. 2. The aqueous electrolyte solution according to claim 1, wherein the sodium salt is at least one selected from the group consisting of sulfates, nitrates, acetates, chlorates, perchlorates, hypochlorites, hydroxide salts, chloride salts, fluoride salts, and imide salts.
3. 3. The aqueous electrolyte solution according to claim 1, wherein a mass concentration of the salt relative to the electrolyte solution is 1 mol / kg or more and 30 mol / kg or less.
4. The aqueous electrolyte solution according to any one of claims 1 to 3, which has a potential window of 2.0 V or more.
5. 5. The method for producing the aqueous electrolyte solution according to claim 1, further comprising the step of mixing a sodium salt with urea, which is a chaotropic additive.
6. An electrochemical device comprising the aqueous electrolyte solution according to any one of claims 1 to 4.
7. A method for producing an electrochemical device, comprising using the aqueous electrolyte solution according to any one of claims 1 to 4.
Citation Information
Patent Citations
Polyaniline coated molybdenum disulfide flexible electrode preparation method and application
CN108281297A
JP1973046839A
Zinc alkali secondary battery
JP1978000840A
Zinc alkali secondary battery
JP1978000841A
battery
JP1991285271A