WO2016056629A1 - 非水電解質マグネシウム系二次電池 - Google Patents
非水電解質マグネシウム系二次電池 Download PDFInfo
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- WO2016056629A1 WO2016056629A1 PCT/JP2015/078651 JP2015078651W WO2016056629A1 WO 2016056629 A1 WO2016056629 A1 WO 2016056629A1 JP 2015078651 W JP2015078651 W JP 2015078651W WO 2016056629 A1 WO2016056629 A1 WO 2016056629A1
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- WO
- WIPO (PCT)
- Prior art keywords
- magnesium
- secondary battery
- group
- nonaqueous electrolyte
- positive electrode
- Prior art date
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- 239000011777 magnesium Substances 0.000 title claims abstract description 132
- FYYHWMGAXLPEAU-UHFFFAOYSA-N Magnesium Chemical compound [Mg] FYYHWMGAXLPEAU-UHFFFAOYSA-N 0.000 title claims abstract description 59
- 229910052749 magnesium Inorganic materials 0.000 title claims abstract description 59
- 239000011255 nonaqueous electrolyte Substances 0.000 title claims abstract description 39
- 150000001768 cations Chemical class 0.000 claims abstract description 28
- 229910001425 magnesium ion Inorganic materials 0.000 claims abstract description 19
- JLVVSXFLKOJNIY-UHFFFAOYSA-N Magnesium ion Chemical compound [Mg+2] JLVVSXFLKOJNIY-UHFFFAOYSA-N 0.000 claims abstract description 14
- 150000001450 anions Chemical class 0.000 claims abstract description 5
- 125000004432 carbon atom Chemical group C* 0.000 claims description 25
- 239000000463 material Substances 0.000 claims description 24
- -1 magnesium nitride Chemical class 0.000 claims description 21
- 125000000217 alkyl group Chemical group 0.000 claims description 19
- 229910004283 SiO 4 Inorganic materials 0.000 claims description 15
- 229910052757 nitrogen Inorganic materials 0.000 claims description 14
- 239000007774 positive electrode material Substances 0.000 claims description 13
- 230000037431 insertion Effects 0.000 claims description 11
- 238000000034 method Methods 0.000 claims description 11
- 229910052698 phosphorus Inorganic materials 0.000 claims description 11
- 229910017916 MgMn Inorganic materials 0.000 claims description 10
- 229910017267 Mo 6 S 8 Inorganic materials 0.000 claims description 9
- QGZKDVFQNNGYKY-UHFFFAOYSA-O Ammonium Chemical compound [NH4+] QGZKDVFQNNGYKY-UHFFFAOYSA-O 0.000 claims description 8
- 125000000623 heterocyclic group Chemical group 0.000 claims description 7
- 238000003780 insertion Methods 0.000 claims description 7
- 229910052751 metal Inorganic materials 0.000 claims description 7
- 239000002184 metal Substances 0.000 claims description 7
- 239000007773 negative electrode material Substances 0.000 claims description 7
- 125000004433 nitrogen atom Chemical group N* 0.000 claims description 7
- 229910000861 Mg alloy Inorganic materials 0.000 claims description 6
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- CBXCPBUEXACCNR-UHFFFAOYSA-N tetraethylammonium Chemical compound CC[N+](CC)(CC)CC CBXCPBUEXACCNR-UHFFFAOYSA-N 0.000 claims description 5
- NZSICTQUKULOSA-UHFFFAOYSA-N 5-azoniaspiro[4.4]nonane Chemical compound C1CCC[N+]21CCCC2 NZSICTQUKULOSA-UHFFFAOYSA-N 0.000 claims description 4
- 229910017961 MgNi Inorganic materials 0.000 claims description 4
- 238000003379 elimination reaction Methods 0.000 claims description 4
- 229910052731 fluorine Inorganic materials 0.000 claims description 4
- 238000006713 insertion reaction Methods 0.000 claims description 4
- 101100069231 Caenorhabditis elegans gkow-1 gene Proteins 0.000 claims description 3
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- 238000003795 desorption Methods 0.000 claims description 2
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- WGYKZJWCGVVSQN-UHFFFAOYSA-N propylamine Chemical compound CCCN WGYKZJWCGVVSQN-UHFFFAOYSA-N 0.000 claims description 2
- DZLFLBLQUQXARW-UHFFFAOYSA-N tetrabutylammonium Chemical compound CCCC[N+](CCCC)(CCCC)CCCC DZLFLBLQUQXARW-UHFFFAOYSA-N 0.000 claims description 2
- SZWHXXNVLACKBV-UHFFFAOYSA-N tetraethylphosphanium Chemical compound CC[P+](CC)(CC)CC SZWHXXNVLACKBV-UHFFFAOYSA-N 0.000 claims description 2
- QEMXHQIAXOOASZ-UHFFFAOYSA-N tetramethylammonium Chemical compound C[N+](C)(C)C QEMXHQIAXOOASZ-UHFFFAOYSA-N 0.000 claims description 2
- 229910014332 N(SO2CF3)2 Inorganic materials 0.000 abstract 1
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Images
Classifications
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- H01M10/00—Secondary cells; Manufacture thereof
- H01M10/05—Accumulators with non-aqueous electrolyte
- H01M10/056—Accumulators with non-aqueous electrolyte characterised by the materials used as electrolytes, e.g. mixed inorganic/organic electrolytes
- H01M10/0564—Accumulators with non-aqueous electrolyte characterised by the materials used as electrolytes, e.g. mixed inorganic/organic electrolytes the electrolyte being constituted of organic materials only
- H01M10/0566—Liquid materials
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- C07C211/63—Quaternary ammonium compounds having quaternised nitrogen atoms bound to acyclic carbon atoms
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- C07C—ACYCLIC OR CARBOCYCLIC COMPOUNDS
- C07C309/00—Sulfonic acids; Halides, esters, or anhydrides thereof
- C07C309/01—Sulfonic acids
- C07C309/02—Sulfonic acids having sulfo groups bound to acyclic carbon atoms
- C07C309/03—Sulfonic acids having sulfo groups bound to acyclic carbon atoms of an acyclic saturated carbon skeleton
- C07C309/06—Sulfonic acids having sulfo groups bound to acyclic carbon atoms of an acyclic saturated carbon skeleton containing halogen atoms, or nitro or nitroso groups bound to the carbon skeleton
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- C—CHEMISTRY; METALLURGY
- C07—ORGANIC CHEMISTRY
- C07C—ACYCLIC OR CARBOCYCLIC COMPOUNDS
- C07C309/00—Sulfonic acids; Halides, esters, or anhydrides thereof
- C07C309/01—Sulfonic acids
- C07C309/02—Sulfonic acids having sulfo groups bound to acyclic carbon atoms
- C07C309/20—Sulfonic acids having sulfo groups bound to acyclic carbon atoms of an acyclic unsaturated carbon skeleton
- C07C309/21—Sulfonic acids having sulfo groups bound to acyclic carbon atoms of an acyclic unsaturated carbon skeleton containing nitrogen atoms, not being part of nitro or nitroso groups, bound to the carbon skeleton
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- C—CHEMISTRY; METALLURGY
- C07—ORGANIC CHEMISTRY
- C07F—ACYCLIC, CARBOCYCLIC OR HETEROCYCLIC COMPOUNDS CONTAINING ELEMENTS OTHER THAN CARBON, HYDROGEN, HALOGEN, OXYGEN, NITROGEN, SULFUR, SELENIUM OR TELLURIUM
- C07F9/00—Compounds containing elements of Groups 5 or 15 of the Periodic Table
- C07F9/02—Phosphorus compounds
- C07F9/28—Phosphorus compounds with one or more P—C bonds
- C07F9/54—Quaternary phosphonium compounds
- C07F9/5407—Acyclic saturated phosphonium compounds
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- H—ELECTRICITY
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- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
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- H01M10/05—Accumulators with non-aqueous electrolyte
- H01M10/054—Accumulators with insertion or intercalation of metals other than lithium, e.g. with magnesium or aluminium
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- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
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- H01M10/056—Accumulators with non-aqueous electrolyte characterised by the materials used as electrolytes, e.g. mixed inorganic/organic electrolytes
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
- H01M10/00—Secondary cells; Manufacture thereof
- H01M10/05—Accumulators with non-aqueous electrolyte
- H01M10/056—Accumulators with non-aqueous electrolyte characterised by the materials used as electrolytes, e.g. mixed inorganic/organic electrolytes
- H01M10/0564—Accumulators with non-aqueous electrolyte characterised by the materials used as electrolytes, e.g. mixed inorganic/organic electrolytes the electrolyte being constituted of organic materials only
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- H01M4/02—Electrodes composed of, or comprising, active material
- H01M4/36—Selection of substances as active materials, active masses, active liquids
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- H—ELECTRICITY
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- H01M4/02—Electrodes composed of, or comprising, active material
- H01M4/36—Selection of substances as active materials, active masses, active liquids
- H01M4/38—Selection of substances as active materials, active masses, active liquids of elements or alloys
- H01M4/381—Alkaline or alkaline earth metals elements
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
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- H01M4/02—Electrodes composed of, or comprising, active material
- H01M4/36—Selection of substances as active materials, active masses, active liquids
- H01M4/38—Selection of substances as active materials, active masses, active liquids of elements or alloys
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- H01M4/00—Electrodes
- H01M4/02—Electrodes composed of, or comprising, active material
- H01M4/36—Selection of substances as active materials, active masses, active liquids
- H01M4/48—Selection of substances as active materials, active masses, active liquids of inorganic oxides or hydroxides
- H01M4/483—Selection of substances as active materials, active masses, active liquids of inorganic oxides or hydroxides for non-aqueous cells
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- H01—ELECTRIC ELEMENTS
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- H01M4/02—Electrodes composed of, or comprising, active material
- H01M4/36—Selection of substances as active materials, active masses, active liquids
- H01M4/58—Selection of substances as active materials, active masses, active liquids of inorganic compounds other than oxides or hydroxides, e.g. sulfides, selenides, tellurides, halogenides or LiCoFy; of polyanionic structures, e.g. phosphates, silicates or borates
- H01M4/583—Carbonaceous material, e.g. graphite-intercalation compounds or CFx
- H01M4/587—Carbonaceous material, e.g. graphite-intercalation compounds or CFx for inserting or intercalating light metals
-
- H—ELECTRICITY
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- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
- H01M2300/00—Electrolytes
- H01M2300/0017—Non-aqueous electrolytes
- H01M2300/0025—Organic electrolyte
- H01M2300/0045—Room temperature molten salts comprising at least one organic ion
-
- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02E—REDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
- Y02E60/00—Enabling technologies; Technologies with a potential or indirect contribution to GHG emissions mitigation
- Y02E60/10—Energy storage using batteries
Definitions
- the present invention relates to a nonaqueous electrolyte magnesium secondary battery.
- Magnesium secondary batteries have high theoretical capacity density, abundant resources, and high safety. Therefore, they are expected to be put into practical use as batteries exceeding lithium secondary batteries.
- divalent magnesium ions have a stronger interaction than monovalent lithium ions and are less likely to diffuse in the solid phase.
- Non-Patent Document 1 reports that Mg 2+ is electrochemically inserted into V 2 O 5 , but does not disclose a magnesium-based secondary battery.
- Non-Patent Document 2 only describes the Mg metal electrodeposition / remelting behavior in an ionic liquid, and no battery data is shown.
- An object of the present invention is to provide a non-aqueous electrolyte magnesium secondary battery having a safe and practical charge / discharge capacity.
- the present invention provides the following non-aqueous electrolyte magnesium secondary battery.
- Item 1 In a nonaqueous electrolyte magnesium secondary battery including a positive electrode, a negative electrode, a separator, and a nonaqueous electrolyte, the anion of the nonaqueous electrolyte includes [N (SO 2 CF 3 ) 2 ] ⁇ , and the cation includes Mg 2+ and A non-aqueous electrolyte magnesium-based secondary battery containing an organic onium cation.
- Item 2. Item 2.
- Secondary battery Item 3.
- Item 2. The nonaqueous electrolyte magnesium secondary battery according to Item 1, wherein the positive electrode includes a positive electrode active material, and the positive electrode active material is a material that causes insertion / extraction reaction of magnesium ions.
- Magnesium ion insertion / desorption materials include metal sulfides or metal oxides that do not contain magnesium, oxides that desorb Li from Li complex oxides, and are replaced with Mg ions, chevrel materials, polyanion materials
- Item 5 is at least one selected from the group consisting of a silicate material, magnesium nitride, an organic cathode material, a compound composed of a transition metal and fluorine, and a halogen compound cathode material Secondary battery.
- Item 6. The nonaqueous electrolyte magnesium secondary battery according to any one of Items 1 to 5, wherein the organic onium cation has a symmetric structure.
- Item 7. Item 6. The nonaqueous electrolyte magnesium secondary battery according to any one of Items 1 to 5, wherein the organic onium cation is ammonium, and the difference in the number of carbon atoms of the four groups bonded to the nitrogen atom of ammonium is 1 or 0. .
- Item 8. The organic onium cation is represented by the following formula (II)
- X represents N or P.
- R represents the same alkyl group having 1 to 10 carbon atoms or a straight chain or branched group, or two adjacent R groups together with X. And represents a 3- to 11-membered heterocyclic group.
- Item 6 The nonaqueous electrolyte magnesium secondary battery according to any one of Items 1 to 5, which is represented by: Item 9.
- the organic onium cation is represented by the following formula (III)
- Item 6 The nonaqueous electrolyte magnesium secondary battery according to any one of Items 1 to 5, which is represented by: Item 10.
- Organic onium cations are tetramethylammonium (N 1111 ), tetraethylammonium (N 2222 ), tetra n-propylammonium (N 3333 ), tetra n-butylammonium (N 4444 ), tetra n-pentylammonium (N 5555 ),
- Item 5 is selected from the group consisting of 5-azoniaspiro [4.4] nonane (AS 44 ), tetraethylphosphonium (P 2222 ) and 5-phosphoniaspiro [4.4] nonane (PS 44 )
- Item 11. Item 11. The nonaqueous electrolyte magnesium secondary battery according to Item 10, wherein the organic onium cation is tetraethylammonium (N 2222 ) or 5-azoniaspiro [4.4] nonane (AS 44 ).
- a non-aqueous electrolyte magnesium secondary battery that can be charged and discharged a plurality of times with a substantially theoretical capacity is obtained.
- tetraethylammonium N 2222
- N 2222 is particularly preferable because it can be charged / discharged at a theoretical dose even when charge / discharge is repeated, and the charge / discharge capacity retention rate is high.
- Thermogravimetric analysis of Mg [Tf 2 N] 2 was performed under a nitrogen gas flow at a heating rate of 10 ° C. ⁇ min ⁇ 1 .
- Thermogravimetric analysis of electrolyte containing Mg [Tf 2 N] 2 was performed on the electrolyte added with Mg [Tf 2 N] 2 as an electrolyte salt.
- the schematic diagram of a battery test cell A bipolar electrochemical test cell was constructed by combining the electrolytic solution, the negative electrode, and the composite positive electrode. The assembly was carried out in an argon gas atmosphere with both water and oxygen concentrations of 0.5 ppm or less.
- a charge / discharge test was performed using the same electrode and separator as in FIG. 7 using an electrolytic solution in which Mg [Tf 2 N] 2 was dissolved in [EMI] [Tf 2 N] at 0.5 mol ⁇ dm ⁇ 3 .
- [AS 44 ] First charge / discharge of [Tf 2 N] electrolyte.
- a charge / discharge test was performed using the same electrode and separator as in FIG. 7 using an electrolytic solution in which Mg [Tf 2 N] 2 was dissolved in [AS 44 ] [Tf 2 N] at a molar ratio of 1: 9.
- the negative electrode of the magnesium-based secondary battery of the present invention may use magnesium metal, and a magnesium alloy-based material (for example, Mg-In alloy, Mg-Zn alloy, Mg-Sn alloy, Mg-Cd alloy) as the negative electrode active material , Mg-Co alloy, Mg-Mn alloy, Mg-Ga alloy, Mg-Pb alloy, Mg-Ni alloy, Mg-Cu alloy, Mg-Al alloy, Mg-Ca alloy, Mg-Li alloy, Mg-Al- Zn alloy, Mg-In-Ni, etc.), carbon-based materials (graphite, carbon fiber, amorphous carbon, graphene, etc.), metallic magnesium and composite materials of magnesium alloy and carbon-based materials (magnesium alloy-graphite, metallic magnesium-carbon fiber) , Magnesium alloy-carbon fiber, magnesium metal-amorphous carbon, magnesium alloy-amorphous carbon, etc.) may be used.
- a magnesium alloy-based material for example, Mg-In alloy,
- the positive electrode uses a material that causes insertion / extraction reaction of magnesium ions as a positive electrode active material. Specifically, a metal sulfide or metal oxide containing no magnesium (TiS 2, MoS 2, NbSe 2, CoS, V 2 O 5, V 8 O 13, etc.
- a known material that causes insertion / extraction reaction of lithium ions is a non-aqueous electrolyte magnesium secondary battery of the present invention.
- Materials that can be used as a material that causes an insertion / elimination reaction, and preferred magnesium ions cause an insertion / elimination reaction are V 2 O 5 , MgMn 2 O 4 , MgNi 2 O 4 , and MgCo 2 O 4 .
- the positive electrode can be obtained by providing a positive electrode active material layer containing a positive electrode active material, a binder, a conductive aid and the like on a current collector.
- the negative electrode may use metallic magnesium, and can be obtained by providing a negative electrode active material layer containing a negative electrode active material, a binder and the like on a current collector.
- binder used for the positive electrode and the negative electrode examples include polyimide, carboxymethyl cellulose, cellulose, diacetyl cellulose, methyl cellulose, hydroxyethyl cellulose, hydroxypropyl cellulose, sodium alginate, polyacrylic acid, sodium polyacrylate, polyvinylphenol, and polyvinyl methyl ether.
- Examples of the conductive aid include vapor grown carbon fiber (VGCF), ketjen black (KB), carbon black, acetylene black, and polyphenylene derivatives.
- VGCF vapor grown carbon fiber
- KB ketjen black
- carbon black carbon black
- acetylene black and polyphenylene derivatives.
- the current collector in addition to a metal plate such as aluminum, stainless steel, nickel, and titanium, an alloy in which the surface of aluminum or stainless steel is treated with carbon, nickel, titanium, or silver is preferably used. be able to.
- a coating liquid for providing a positive electrode active material layer or a negative electrode active material layer on a current collector for example, the conductive auxiliary agent, and a positive electrode active material or a negative electrode active material, a binder, and N are used as necessary.
- a slurry-like coating liquid containing a dispersion medium such as methyl-2-pyrrolidone (NMP), water, and toluene is used.
- Examples of the method of applying the coating liquid to the current collector include a reverse roll method, a direct roll method, a blade method, a knife method, an extrusion method, a curtain method, a gravure method, a bar method, a dip method, and a squeeze method. Of these, the blade method, knife method and extrusion method are preferred.
- the coating speed is preferably 0.1 to 100 m / min. Under the present circumstances, the surface state of a favorable coating layer can be obtained by selecting the said coating method according to the solution physical property and drying property of a coating liquid. Application of the coating solution may be performed one side at a time or both sides simultaneously.
- the non-aqueous electrolyte contains [N (SO 2 CF 3 ) 2 ] ⁇ as an anion and Mg 2+ and / or an organic onium cation as a cation.
- [N (SO 2 CF 3 ) 2 ] is abbreviated as [Tf 2 N].
- Examples of the organic onium cation include the following ammonium, guanidinium, phosphonium, and sulfonium.
- R 1 , R 2 , R 3 and R 4 are the same or different and each represents a hydrogen atom, an alkyl group, an alkoxy group, a polyether group, an optionally substituted aryl group, or a substituted group.
- R 1 and R 2 or R 3 and R 4 in the formula (Ia) each may be substituted with a 5- to 8-membered ring together with a nitrogen atom. A nitrogen-containing heterocyclic group may be formed.
- R 1 and R 2 are the same or different and are a hydrogen atom, an alkyl group, an alkoxy group, a polyether group, an optionally substituted aryl group, an optionally substituted aralkyl group or an alkoxyalkyl group. Is shown.) (3) Phosphonium represented by general formula (Ic) [PR 1 R 2 R 3 R 4 ] + (Ic) [Wherein R 1 , R 2 , R 3 and R 4 are the same or different and each represents a hydrogen atom, an alkyl group, an alkoxy group, a polyether group, an optionally substituted aryl group or an optionally substituted group.
- R 1 and R 2 or R 3 and R 4 may be combined with a phosphorus atom to form a 5- to 8-membered optionally substituted phosphorus-containing heterocyclic group.
- alkyl group examples include methyl, ethyl, n-propyl, isopropyl, n-butyl, sec-butyl, isobutyl, t-butyl, pentyl, hexyl, heptyl, octyl, nonyl, decyl, undecyl, dodecyl, tridecyl, tetradecyl, hexadecyl
- linear or branched alkyl group having 1 to 10 carbon atoms examples include methyl, ethyl, n-propyl, isopropyl, n-butyl, sec-butyl, isobutyl, t-butyl, pentyl, hexyl, heptyl, octyl, Nonyl and decyl are mentioned.
- alkoxy group examples include straight-chain or branched alkoxy groups having 1 to 20, preferably 1 to 10, more preferably 1 to 6 and particularly 1 to 3 carbon atoms having an (O-alkyl) structure.
- aryl group a phenyl group, a toluyl group, a xylyl group, an ethylphenyl group, a 1,3,5-trimethylphenyl group, a naphthyl group, an anthranyl group, a phenanthryl group, etc., preferably 6 to 14 carbon atoms 10 aryl groups are mentioned.
- aralkyl group examples include aralkyl groups having 7 to 15 carbon atoms such as benzyl, phenethyl and naphthylmethyl.
- the alkoxy group and the alkyl group of the alkoxyalkyl group are the same as described above, and are straight chain or branched straight chain having 1 to 20, preferably 1 to 10, more preferably 1 to 6, especially 1 to 3 carbon atoms.
- Examples thereof include a straight chain or branched alkyl group having 1 to 20, preferably 1 to 10, more preferably 1 to 6, especially 1 to 3 carbon atoms substituted with a branched alkoxy group.
- Examples include a group (CH 2 OCH 3 ), a methoxyethyl group (CH 2 CH 2 OCH 3 ), an ethoxymethyl group (CH 2 OCH 2 CH 3 ), and an ethoxyethyl group (CH 2 CH 2 OCH 2 CH 3 ).
- polyether group examples include- (CH 2 ) n1 -O- (CH 2 CH 2 O) n2- (C 1 -C 4 alkyl), or- (CH 2 ) n1 -O- (CH 2 CH (CH 3 ) O) a group represented by n2- (C 1 -C 4 alkyl), where n1 is an integer of 1 to 4, n2 is an integer of 1 to 4, and C 1 -C 4 alkyl is methyl, Examples are ethyl, n-propyl, isopropyl, n-butyl, isobutyl, sec-butyl, tert-butyl.
- R 1 and R 2 or R 3 and R 4 may be formed together with the nitrogen atom to which they are bonded, and may be a 5- to 8-membered ring, preferably a 5-membered ring or a 6-membered ring.
- nitrogen-containing heterocyclic group include pyrrolidinium, piperidinium, pyrrolium, pyridinium, imidazolium and the like.
- Examples of the 3- to 11-membered nitrogen-containing or phosphorus-containing heterocyclic group in which two adjacent R groups are combined with X include the following.
- the organic onium cation of general formula (II) has a symmetric structure because the four R groups are identical.
- the organic onium cation of the general formula (III) has a methyl group and three identical R groups, and has a symmetrical structure.
- Examples of the substituent for the aryl group and aralkyl group include a halogen atom (F, Cl, Br, I), a hydroxyl group, a methyl group, a methoxy group, a nitro group, an acetyl group, and an acetylamino group.
- a halogen atom F, Cl, Br, I
- a hydroxyl group a methyl group, a methoxy group, a nitro group, an acetyl group, and an acetylamino group.
- An ether, ester, or ketone structure may be formed by interposing one or more —O—, —COO—, and —CO— between C—C single bonds at arbitrary positions of the alkyl group.
- the organic onium cation has the following formula (II)
- X represents N or P.
- R represents the same alkyl group having 1 to 10 carbon atoms or a straight chain or branched group, or two adjacent R groups together with X. And represents a 3- to 11-membered heterocyclic group.
- It is represented by X is preferably N.
- R is a linear or branched alkyl group having 1 to 10 carbon atoms, preferably 1 to 6 carbon atoms, more preferably 1 to 4 carbon atoms, and still more preferably 1 to 3 carbon atoms, and most preferably R is Ethyl.
- the organic onium cation has the following formula (III)
- R represents the same alkyl group having 1 to 10 carbon atoms or a straight chain or branched chain). X is preferably N.
- R is a linear or branched alkyl group having 1 to 10 carbon atoms, preferably 1 to 6 carbon atoms, more preferably 1 to 4 carbon atoms, and still more preferably 1 to 3 carbon atoms, and most preferably R is Methyl.
- the organic onium used in the present invention is AS44, AS55, [N 1,1,1,1 ], [N 2,2,2,2 ], [N 3,3,3,3 ], [N 4,4,4,4 ], [P 2,2,2,2 ], [P 3,3,3,3 ], [P 4,4,4,4 ] It is preferable because it has a high charge / discharge capacity retention rate.
- the difference in the number of carbon atoms of each group may be one, such as EMI, where the number of carbon atoms of the chain bonded to the nitrogen atom is 1 (methyl, methylene) and 2 (ethyl, ethylene).
- the difference in the number of carbon atoms of the four groups bonded to the nitrogen atom of ammonium is 1 or 0, more preferably 0.
- [N 1,1,1,2 ], [N 1,1,2,2 ], [N 1,2,2,2 ], [P 1,1,1,2 ], [P 1,1, 2,2 ] and [P 1,2,2,2 ] have a carbon number difference of 1.
- AS44, AS55, [N 2,2,2,2 ], [N 3,3,3,3 ], [N 4,4,4,4 ], [P 2,2,2,2 ], [P Symmetrical organic oniums such as [ 3,3,3,3 ] and [P 4,4,4,4 ] have zero carbon difference.
- the electrolyte used in the present invention may further contain other electrolytes such as [Tf 2 N] and salts of alkali metals such as Li, Na, K, and Cs.
- the magnesium-based secondary battery of the present invention may further contain other ionic liquid.
- the magnesium secondary battery of the present invention includes a separator in addition to the positive electrode, the negative electrode, and the electrolyte.
- the electrolyte of the present invention is usually used by filling or impregnating the gap between the separator part and the electrode.
- Each of the above-described constituent elements can be sealed in a well-known battery exterior such as a coin type, a cylindrical type, or a laminate package, and sealed to form a magnesium secondary battery.
- FIG. 1 shows the result of thermogravimetric analysis of Mg [Tf 2 N] 2 which is an electrolyte salt. The measurement was performed in a nitrogen gas atmosphere at a rate of temperature increase of 10 ° C ⁇ min- 1 .
- the Mg salt containing [Tf 2 N] which is known to have high heat resistance, was found to be stable up to 300 ° C or higher.
- FIG. 2 shows the results of thermogravimetric analysis performed under the same conditions as in Reference Example 1 for the electrolytic solution in which Mg [Tf 2 N] 2 is added as an electrolyte salt to various solvents. Electrolytic solutions using organic solvents such as triglyme and sulfolane volatilize below 200 ° C, whereas [N 2,2,2 ] is an ionic liquid containing [Tf 2 N] as well as Mg [Tf 2 N] 2 , 2 ] [Tf 2 N] and [EMI] [Tf 2 N] were stable up to 300 ° C or higher.
- organic solvents such as triglyme and sulfolane
- Example 2 As an example of the magnesium secondary battery according to the present invention, a bipolar cell magnesium battery having a structure close to that of an actual battery as shown in FIG. 3 was produced. The assembly was performed in an argon gas atmosphere in which moisture and oxygen concentrations were both 0.5 ppm or less. Magnesium metal polished in an argon gas atmosphere was used for the negative electrode.
- V 2 O 5 active material, polyimide as binder, vapor grown carbon fiber and ketjen black as conductive aid, and V 2 O 5 mixed positive electrode with aluminum metal as current collector were prepared. Using. A glass fiber sheet was used as the separator.
- FIG. 4 shows the results of a charge / discharge test conducted at 25 ° C. by constructing a battery cell with an electrolytic solution in which Mg [Tf 2 N] 2 was dissolved in acetonitrile at a volume molar concentration of 0.5 mol ⁇ dm ⁇ 3 .
- the charge / discharge rate was 10 ⁇ A ⁇ cm ⁇ 2 .
- This current value corresponds to 0.05 C on the assumption that magnesium ions are inserted into and desorbed from V 2 O 5 at a molar ratio of 1: 1.
- the cutoff voltage was 0 V at the lower limit and 2.8 V at the upper limit.
- the theoretical capacity of MgV 2 O 5 is 294 mAh ⁇ g ⁇ 1 , but the overvoltage was large during the first discharge, and the voltage reached the cutoff lower limit with a discharge capacity of 12 mAh ⁇ g ⁇ 1 .
- the overvoltage became larger, and the charging capacity reached 2 mAh ⁇ g ⁇ 1 , the voltage reached the cutoff upper limit, and reversible charging / discharging did not occur.
- FIG. 5 shows the results of a charge / discharge test conducted at 80 ° C. by constructing a battery cell with an electrolytic solution in which Mg [Tf 2 N] 2 was dissolved in triglyme at a molar ratio of 1: 5.
- the charge / discharge rate and cut-off voltage were 10 ⁇ A ⁇ cm ⁇ 2 and 0 to 2.8 V as in Comparative Example 1.
- the discharge capacity when this electrolytic solution was used was 23 mAh ⁇ g ⁇ 1 , which was slightly improved as compared with Comparative Example 1. This is because the operating temperature can be increased by using a solvent having a boiling point higher than that of acetonitrile, thereby reducing the overvoltage.
- the voltage reached the cutoff upper limit with a charging capacity of 6 mAh ⁇ g ⁇ 1 , and reversible charge / discharge did not occur.
- FIG. 6 shows the results of a charge / discharge test conducted at 80 ° C. by constructing a battery cell with an electrolytic solution in which Mg [Tf 2 N] 2 was dissolved in sulfolane at a volume molar concentration of 0.5 mol ⁇ dm ⁇ 3 .
- the charge / discharge rate and cut-off voltage were 10 ⁇ A ⁇ cm ⁇ 2 and 0 to 2.8 V in the same manner as in Examples 4 to 5.
- the discharge capacity was 16 mAh ⁇ g ⁇ 1 , and after that, when switching to charging, the battery was charged to the same value within the cutoff voltage range.
- Example 3 A battery cell was constructed with an electrolytic solution in which Mg [Tf 2 N] 2 was dissolved in [N 2,2,2,2 ] [Tf 2 N] at a molar ratio of 1: 9, and a charge / discharge test was conducted at 150 ° C. The results are shown in FIG. The charge / discharge rate and cut-off voltage were 10 ⁇ A ⁇ cm ⁇ 2 and 0 to 2.8 V as in Comparative Examples 1 to 3. Unlike Comparative Examples 1 to 3, the first discharge did not reach the cutoff lower limit until the voltage reached 146 mAh ⁇ g- 1 . When switched to charging, it was charged to the same capacity within the cut-off voltage range. This value is significantly higher than those of Comparative Examples 1 to 3, indicating that the ionic liquid electrolyte capable of operating at high temperature is capable of high capacity and reversible charge / discharge.
- FIG. 8 shows the result of separately producing the same battery cell as in Example 3 and conducting a charge / discharge test at 200 ° C.
- the charge / discharge rate was 20 ⁇ A ⁇ cm ⁇ 2 , twice that of Comparative Examples 1 to 3 and Example 3.
- the cut-off voltage was 0 to 2.8 V as in Comparative Examples 1 to 3 and Example 3.
- This current value corresponds to 0.1 C on the assumption that magnesium ions are inserted into and desorbed from V 2 O 5 at a molar ratio of 1: 1.
- the battery was discharged to 294 mAh ⁇ g ⁇ 1 , which is the theoretical capacity of MgV 2 O 5 , and then switched to charge and charged to the same value within the limit voltage.
- 10 times charging / discharging was shown by theoretical capacity like the first time.
- Example 5 Fig. 9 shows the result of a charge / discharge test conducted at 200 ° C by constructing a battery cell with an electrolyte obtained by dissolving Mg [Tf 2 N] 2 in [EMI] [Tf 2 N] at 0.5 mol ⁇ dm -3 .
- the charge / discharge rate and cut-off voltage were 20 ⁇ A ⁇ cm ⁇ 2 and 0 to 2.8 V in the same manner as in Example 4.
- the battery was discharged to 294 mAh ⁇ g ⁇ 1 , which is the theoretical capacity of MgV 2 O 5 , and then charged to the same value within the cutoff voltage range when switched to charging.
- Example 6 Fig. 10 shows the results of a charge / discharge test conducted at 200 ° C by constructing a battery cell with an electrolyte obtained by dissolving Mg [Tf 2 N] 2 in [AS 44 ] [Tf 2 N] at a molar ratio of 1: 9. Show.
- the charge / discharge rate and cut-off voltage were 20 ⁇ A ⁇ cm ⁇ 2 and 0 to 2.8 V as in Examples 4 to 5.
- the battery was discharged to 294 mAh ⁇ g ⁇ 1 , which is the theoretical capacity of MgV 2 O 5 , and then charged to the same value within the cutoff voltage range when switched to charging.
- Example 7 A battery cell was constructed with an electrolytic solution in which Mg [Tf 2 N] 2 was dissolved in [P 2,2,2,2 ] [Tf 2 N] at a molar ratio of 1: 9, and a charge / discharge test was conducted at 200 ° C. The results are shown in FIG. The charge / discharge rate and cut-off voltage were 20 ⁇ A ⁇ cm ⁇ 2 and 0 to 2.8 V as in Examples 4 to 6. The discharge capacity reached 250 mAh ⁇ g ⁇ 1 and reached the cutoff voltage lower limit. When switched to charging, the battery was charged to the same value within the cutoff voltage range.
- Example 8 Fig. 12 shows the results of a charge / discharge test conducted at 200 ° C by constructing a battery cell with an electrolyte obtained by dissolving Mg [Tf 2 N] 2 in [Py 13 ] [Tf 2 N] at 0.5 mol ⁇ dm -3 . Shown in The charge / discharge rate and cut-off voltage were 20 ⁇ A ⁇ cm ⁇ 2 and 0 to 2.8 V in the same manner as in Example 4. In the same manner as in Example 4, the battery was discharged to 294 mAh ⁇ g ⁇ 1 , which is the theoretical capacity of MgV 2 O 5 , and then charged to the same value within the cutoff voltage range when switched to charging.
- Example 9 Fig. 13 shows the results of a charge / discharge test conducted at 200 ° C by constructing a battery cell with an electrolyte obtained by dissolving Mg [Tf 2 N] 2 in [DEME] [Tf 2 N] at 0.5 mol ⁇ dm -3 . Show.
- the charge / discharge rate and cut-off voltage were 20 ⁇ A ⁇ cm ⁇ 2 and 0 to 2.8 V in the same manner as in Example 4.
- the battery was discharged to 294 mAh ⁇ g ⁇ 1 , which is the theoretical capacity of MgV 2 O 5 , and then charged to the same value within the cutoff voltage range when switched to charging.
- Example 10 Fabricate a bipolar symmetrical cell with Mg [Tf 2 N] 2 dissolved in [N 2,2,2,2 ] [Tf 2 N] at a molar ratio of 1: 9 and sandwiched between two magnesium metals
- FIG. 14 shows the results of electrochemical AC impedance measurement.
- the width of the arc in the figure indicates the interfacial charge transfer resistance of the electrolyte to magnesium metal. These resistances were found to decrease greatly with increasing temperature.
- FIG. 15 shows the results of measurement of overvoltage using a magnesium symmetrical cell the same as in Example 10 with a current of 10 ⁇ A flowing for 10 minutes. Increasing the temperature greatly reduces the overvoltage, which is consistent with the decrease in interfacial charge transfer resistance of Example 10.
- Example 12 V 2 O using Mg [Tf 2 N] 2 dissolved in [N 2,2,2,2 ] [Tf 2 N] at a molar ratio of 1: 9, Mg metal negative electrode, and stainless steel current collector Prepare three battery cells combined with 5 positive electrodes, and discharge them at 200 ° C before discharging (no charge / discharge operation), then discharge at 200 ° C, and collect the fluorescent light on the V 2 O 5 positive electrode recovered after being charged. The results of X-ray analysis are shown in FIG. Since there is no peak corresponding to Mg K ⁇ before discharge and it is detected after discharge, Mg ions are inserted into the V 2 O 5 positive electrode by discharge.
- V 2 O 5 used as the positive electrode active material is a material that causes insertion / extraction reaction of magnesium ions.
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Abstract
Description
項1. 正極、負極、セパレータ、及び、非水電解質を備えた非水電解質マグネシウム系二次電池において、非水電解質のアニオンが[N(SO2CF3)2]-を含み、カチオンがMg2+及び/又は有機オニウムカチオンを含む、非水電解質マグネシウム系二次電池。
項2. 負極が金属マグネシウム、或いは、マグネシウム合金系材料、炭素系材料又は金属マグネシウムもしくはマグネシウム合金と炭素系材料の複合材料からなる群から選ばれる負極活物質を含む、項1に記載の非水電解質マグネシウム系二次電池。
項3. 正極が正極活物質を含み、正極活物質がマグネシウムイオンが挿入/脱離反応を起こす材料である、項1に記載の非水電解質マグネシウム系二次電池。
項4. マグネシウムイオンが挿入/脱離反応を起こす材料が、マグネシウムを含有しない金属硫化物もしくは金属酸化物、Li複合酸化物からLiを脱離させMgイオンに置換した酸化物、シェブレル系材料、ポリアニオン系材料、シリケート系材料、窒化マグネシウム、有機系正極材料、遷移金属とフッ素から構成される化合物及びハロゲン化合物系正極材料からなる群から選ばれる少なくとも1種である、項3に記載の非水電解質マグネシウム系二次電池。
項5. マグネシウムイオンが挿入/脱離反応を起こす材料が、TiS2、MoS2、NbSe2、CoS、V2O5,V8O13、MnO2、CoO2、MgMn2O4,MgNi2O4, MgCo2O、MgAlO3,MgMnO3,MgFeO3MgFe0.5Mn0.5O3,MgFe0.9Al0.1O3,MgMn0.9Al0.1O3、Mg0.5Mn0.9Al0.1O2、Mo6S8, MxMo6S8 (M = Cu, Ni, Ag, 遷移金属,0≦x≦2)、Cu0.13Mg1.09~1.12Mo6S8、MgHf(MoO4)3,Mg0.5Hf0.5Sc1.0(MoO4)3,Mg0.2Zr0.2Sc1.6(WO4)3,Mg0.4Zr0.4Sc1.2(WO4)3,Mg0.6Zr0.6Sc1.2(WO4)3,Mg0.8Zr0.8Sc0.4(WO4)3,MgZr(WO4)3、MgCoSiO4, MgFeSiO4, MgNiSiO4, Mg(Ni0.9Mn0.1)SiO4,MgFe0.9Si0.1O3,MgFe0.5Si0.5O3,MgFe0.1Si0.9O3, Mg1.023(Mn0.956V0.014)SiO4, FeF2.8Cl0.2MgCoSiO4,MgMn0.9Si0.1O3、Mg0.9925(Co0.985V0.015)SiO4, Mg0.959(Fe0.918V0.082)SiO4,Mg0.95(Ni0.9V0.100)SiO4、窒化マグネシウム、マグネシウムポルフィリン,ポリチオフェン、FeF3,MnF3からなる群から選ばれる少なくとも1種である、項3に記載の非水電解質マグネシウム系二次電池。
項6. 有機オニウムカチオンが対称構造を有する、項1~5のいずれか1項に記載の非水電解質マグネシウム系二次電池。
項7. 有機オニウムカチオンがアンモニウムであり、アンモニウムの窒素原子に結合する4つの基の炭素数の差が1又は0である、項1~5のいずれか1項に記載の非水電解質マグネシウム系二次電池。
項8. 有機オニウムカチオンが下記式(II)
で表される、項1~5のいずれか1項に記載の非水電解質マグネシウム系二次電池。
項9. 有機オニウムカチオンが下記式(III)
で表される、項1~5のいずれか1項に記載の非水電解質マグネシウム系二次電池。
項10. 有機オニウムカチオンが、テトラメチルアンモニウム(N1111)、テトラエチルアンモニウム(N2222)、テトラn-プロピルアンモニウム(N3333)、テトラn-ブチルアンモニウム(N4444)、テトラn-ペンチルアンモニウム(N5555)、5-アゾニアスピロ[4.4]ノナン(AS44)、テトラエチルホスホニウム(P2222)及び5-フォスフォニアスピロ[4.4]ノナン(PS44)からなる群から選ばれる、項1~5のいずれか1項に記載の非水電解質マグネシウム系二次電池。
項11. 有機オニウムカチオンが、テトラエチルアンモニウム(N2222)又は5-アゾニアスピロ[4.4]ノナン(AS44)である、項10に記載の非水電解質マグネシウム系二次電池。
(1)一般式(Ia)で表されるアンモニウム
[NR1R2R3R4]+ (Ia)
〔式(I)中、R1、R2、R3、R4は、同一又は異なって、水素原子、アルキル基、アルコキシ基、ポリエーテル基、置換されていてもよいアリール基、置換されていてもよいアラルキル基またはアルコキシアルキル基を示し、式(Ia)においてR1及びR2或いはR3及びR4は、各々窒素原子と一緒になって5~8員環の置換されていてもよい含窒素複素環基を形成してもよい。〕
(2)一般式(Ib)で表されるグアニジニウム
(3)一般式(Ic)で表されるホスホニウム
[PR1R2R3R4]+ (Ic)
〔式中、R1,R2,R3、R4は、同一又は異なって、水素原子、アルキル基、アルコキシ基、ポリエーテル基、置換されていてもよいアリール基、置換されていてもよいアラルキル基またはアルコキシアルキル基を示す。式(Ic)においてR1及びR2或いはR3及びR4は、各々リン原子と一緒になって5~8員環の置換されていてもよい含リン複素環基を形成してもよい。〕
(4)一般式(Id)で表されるスルホニウム
[SR1R2R3]+ (Id)
〔式中、R1,R2,R3は、同一又は異なって、水素原子、アルキル基、アルコキシ基、ポリエーテル基、置換されていてもよいアリール基、置換されていてもよいアラルキル基またはアルコキシアルキル基を示す。〕
電解質を製造する場合、[Tf2N]-で表されるアニオンの銀塩、バリウム塩、カルシウム塩と上記有機オニウムカチオンのハロゲン化物塩、硫酸塩などの塩を混合してハロゲン化銀、硫酸バリウム、硫酸カルシウムなどの難溶性塩を形成させて除去するようにしてもよい。
アルキル基としては、メチル、エチル、n-プロピル、イソプロピル、n-ブチル、sec-ブチル、イソブチル、t-ブチル、ペンチル、ヘキシル、ヘプチル、オクチル、ノニル、デシル、ウンデシル、ドデシル、トリデシル、テトラデシル、ヘキサデシル、オクタデシル、エイコシルなどの炭素数1~20、好ましくは1~10、より好ましくは1~6,特に1~3の直鎖又は分枝を有するアルキル基が挙げられる。
一般式(II)の有機オニウムカチオンは、4つのR基が同一であるので対称構造を有する。また、一般式(III)の有機オニウムカチオンは、メチル基と3つの同一のR基を有し、対称構造を有する。
で表される。XはNが好ましい。Rは、炭素数1~10、好ましくは炭素数1~6,より好ましくは炭素数1~4,さらに好ましく炭素数1~3の直鎖又は分枝を有するアルキル基であり、最も好ましいRはエチルである。
電解質塩であるMg[Tf2N]2の熱重量分析の結果を図1に示す。測定は窒素ガス雰囲気で昇温速度は10℃・min-1で行った。耐熱性の高いことが知られている[Tf2N]を含むMg塩においても300℃以上まで安定であることが分かった。
Mg[Tf2N]2を電解質塩として各種溶媒に添加した電解液について参考例1と同様の条件で行った熱重量分析の結果を図2に示す。トリグライム、スルホランなどの有機溶媒を用いた電解液は200℃以下で揮発するのに対し、Mg[Tf2N]2と同じく[Tf2N]を含むイオン液体である[N2,2,2,2][Tf2N]、[EMI][Tf2N]を溶媒に用いた電解液は300℃以上まで安定であった。
本発明に係るマグネシウム二次電池の実施例として、図3に示すように実電池に近い構造の二極セルマグネシウム電池を作製した。組み立ては水分、酸素濃度が共に0.5 ppm以下のアルゴンガス雰囲気で行った。負極にはアルゴンガス雰囲気で研磨したマグネシウム金属を用いた。正極にはV2O5を活物質、ポリイミドを結着剤、気相法炭素繊維とケッチェンブラックを導電助剤、アルミニウム金属を集電体とするV2O5合剤正極を作製して用いた。セパレータにはガラス繊維シートを用いた。
各種電解液を上記のMg金属負極、V2O5合剤正極、ガラスセパレータと組み合わせた電池セルの充放電試験の結果を以降の実施例3~9、比較例1~3に示す。
Mg[Tf2N]2をアセトニトリルに体積モル濃度0.5 mol・dm-3で溶解させた電解液で電池セルを構築し、25℃で充放電試験を行った結果を図4に示す。充放電速度は10 μA・cm-2で行った。この電流値はマグネシウムイオンがV2O5にモル比1:1で挿入・脱離する前提で0.05 Cに相当する。カットオフ電圧は下限が0 V、上限が2.8 Vで行った。MgV2O5の理論容量は294 mAh・g-1であるが、初回放電時は過電圧が大きく、放電容量12 mAh・g-1で電圧がカットオフ下限に達した。充電に切り替えたところ、過電圧はより大きくなり、充電容量2 mAh・g-1で電圧がカットオフ上限に達し可逆な充放電にはならなかった。
Mg[Tf2N]2をトリグライムにモル比1:5で溶解させた電解液で電池セルを構築し、80℃で充放電試験を行った結果を図5に示す。充放電速度、カットオフ電圧は比較例1と同様に10 μA・cm-2、0~2.8 Vで行った。本電解液を用いた際の放電容量は23 mAh・g-1であり、比較例1よりも若干向上した。これはアセトニトリルよりも沸点が高い溶媒を用いることで作動温度を上げることができ、それによって過電圧が低減されたためである。充電に切り替えたところ充電容量6 mAh・g-1で電圧がカットオフ上限に達し可逆な充放電にはならなかった。
Mg[Tf2N]2をスルホランに体積モル濃度0.5 mol・dm-3で溶解させた電解液で電池セルを構築し、80℃で充放電試験を行った結果を図6に示す。充放電速度、カットオフ電圧は実施例4~5と同様に10 μA・cm-2、0~2.8 Vで行った。本電解液を用いた際の放電容量は16 mAh・g-1、その後充電に切り替えるとカットオフ電圧の範囲内で同じ値まで充電した。
Mg[Tf2N]2を[N2,2,2,2][Tf2N]にモル比1:9で溶解させた電解液で電池セルを構築し、150℃で充放電試験を行った結果を図7に示す。充放電速度、カットオフ電圧は比較例1~3と同様に10 μA・cm-2、0~2.8 Vで行った。比較例1~3とは異なり、初回の放電で電圧が146 mAh・g-1までカットオフ下限に到達しなかった。充電に切り替えたところ、カットオフ電圧の範囲内で同じ容量まで充電した。この値は比較例1~3を大きく上回っており、高温作動が可能なイオン液体電解液は高容量かつ可逆な充放電が可能であることを示す。
実施例3と同じ電池セルを別途作製し、200℃で充放電試験を行った結果を図8に示す。充放電速度は比較例1~3、実施例3の倍の20 μA・cm-2で行った。カットオフ電圧は比較例1~3、実施例3と同様に0~2.8 Vで行った。この電流値はマグネシウムイオンがV2O5にモル比1:1で挿入・脱離する前提で0.1 Cに相当する。初回放電ではMgV2O5の理論容量である294 mAh・g-1まで放電し、その後充電に切り替えると制限電圧内で同じ値まで充電した。さらに同じ条件で充放電を繰り返したところ、初回と同様に理論容量で10回の充放電を示した。
Mg[Tf2N]2を[EMI][Tf2N]に0.5 mol・dm-3で溶解させた電解液で電池セルを構築し、200℃で充放電試験を行った結果を図9に示す。充放電速度、カットオフ電圧は実施例4と同様に20 μA・cm-2、0~2.8 Vで行った。実施例4と同様にMgV2O5の理論容量である294 mAh・g-1まで放電し、その後充電に切り替えるとカットオフ電圧の範囲内で同じ値まで充電した。
Mg[Tf2N]2を[AS44][Tf2N]にモル比1:9で溶解させた電解液で電池セルを構築し、200℃で充放電試験を行った結果を図10に示す。充放電速度、カットオフ電圧は実施例4~5と同様に20 μA・cm-2、0~2.8 Vで行った。実施例4~5と同様にMgV2O5の理論容量である294 mAh・g-1まで放電し、その後充電に切り替えるとカットオフ電圧の範囲内で同じ値まで充電した。
Mg[Tf2N]2を[P2,2,2,2][Tf2N]にモル比1:9で溶解させた電解液で電池セルを構築し、200℃で充放電試験を行った結果を図11に示す。充放電速度、カットオフ電圧は実施例4~6と同様に20 μA・cm-2、0~2.8 Vで行った。放電容量は250 mAh・g-1でカットオフ電圧下限に達した。充電に切り替えたところ、カットオフ電圧の範囲内で同じ値まで充電した。
Mg[Tf2N]2を[Py13][Tf2N]に0.5 mol・dm-3で溶解させた電解液で電池セルを構築し、200℃で充放電試験を行った結果を図12に示す。充放電速度、カットオフ電圧は実施例4と同様に20 μA・cm-2、0~2.8 Vで行った。実施例4と同様にMgV2O5の理論容量である294 mAh・g-1まで放電し、その後充電に切り替えるとカットオフ電圧の範囲内で同じ値まで充電した。
Mg[Tf2N]2を[DEME][Tf2N]に0.5 mol・dm-3で溶解させた電解液で電池セルを構築し、200℃で充放電試験を行った結果を図13に示す。充放電速度、カットオフ電圧は実施例4と同様に20 μA・cm-2、0~2.8 Vで行った。実施例4と同様にMgV2O5の理論容量である294 mAh・g-1まで放電し、その後充電に切り替えるとカットオフ電圧の範囲内で同じ値まで充電した。
Mg[Tf2N]2を[N2,2,2,2][Tf2N]にモル比1:9で溶解させた電解液をマグネシウム金属二枚で挟んだ二極式対称セルを作製し、電気化学交流インピーダンス測定を行った結果を図14に示す。図中の円弧の幅が電解液のマグネシウム金属に対する界面電荷移動抵抗を示す。これらの抵抗は温度が上がるにつれて大きく減少することが分かった。
実施例10と同じマグネシウム対称セルを用いて10 μAの電流を10分間流し、過電圧の測定を行った結果を図15に示す。温度を上げることで過電圧は大きく低減され、これは実施例10の界面電荷移動抵抗の減少と一致する。
Mg[Tf2N]2を[N2,2,2,2][Tf2N]にモル比1:9で溶解させた電解液とMg金属負極、ステンレス集電体を用いたV2O5正極を組み合わせた電池セルを3個作製し、それぞれ放電前(充放電操作なし)、200℃で放電した後、200℃で放電および充電した後の状態で回収したV2O5正極に蛍光X線分析を行った結果を図16に示す。放電前ではMg Kαに対応したピークが全くなく、放電後は検出されていることから、放電によってV2O5正極にMgイオンが挿入されている。一方、放電前及び充電後のV2O5正極は放電のみのものと比べてMgピークが大きく減少していることから、充電によりV2O5正極からMgイオンが脱離している。図16の結果から、正極活物質として用いたV2O5が、マグネシウムイオンが挿入/脱離反応を起こす材料であることが確認できた。
Claims (11)
- 正極、負極、セパレータ、及び、非水電解質を備えた非水電解質マグネシウム系二次電池において、非水電解質のアニオンが[N(SO2CF3)2]-を含み、カチオンがMg2+及び/又は有機オニウムカチオンを含む、非水電解質マグネシウム系二次電池。
- 負極が金属マグネシウム、或いは、マグネシウム合金系材料、炭素系材料又は金属マグネシウムもしくはマグネシウム合金と炭素系材料の複合材料からなる群から選ばれる負極活物質を含む、請求項1に記載の非水電解質マグネシウム系二次電池。
- 正極が正極活物質を含み、正極活物質がマグネシウムイオンが挿入/脱離反応を起こす材料である、請求項1に記載の非水電解質マグネシウム系二次電池。
- マグネシウムイオンが挿入/脱離反応を起こす材料が、マグネシウムを含有しない金属硫化物もしくは金属酸化物、Li複合酸化物からLiを脱離させMgイオンに置換した酸化物、シェブレル系材料、ポリアニオン系材料、シリケート系材料、窒化マグネシウム、有機系正極材料、遷移金属とフッ素から構成される化合物及びハロゲン化合物系正極材料からなる群から選ばれる少なくとも1種である、請求項3に記載の非水電解質マグネシウム系二次電池。
- マグネシウムイオンが挿入/脱離反応を起こす材料が、TiS2、MoS2、NbSe2、CoS、V2O5,V8O13、MnO2、CoO2、MgMn2O4,MgNi2O4, MgCo2O4, MgAlO3,MgMnO3,MgFeO3MgFe0.5Mn0.5O3,MgFe0.9Al0.1O3,MgMn0.9Al0.1O3、Mg0.5Mn0.9Al0.1O2、Mo6S8, MxMo6S8 (M = Cu, Ni, Ag, 遷移金属,0≦x≦2)、Cu0.13Mg1.09~1.12Mo6S8、MgHf(MoO4)3,Mg0.5Hf0.5Sc1.0(MoO4)3,Mg0.2Zr0.2Sc1.6(WO4)3,Mg0.4Zr0.4Sc1.2(WO4)3,Mg0.6Zr0.6Sc1.2(WO4)3,Mg0.8Zr0.8Sc0.4(WO4)3,MgZr(WO4)3、MgCoSiO4, MgFeSiO4, MgNiSiO4, Mg(Ni0.9Mn0.1)SiO4,MgFe0.9Si0.1O3,MgFe0.5Si0.5O3,MgFe0.1Si0.9O3, Mg1.023(Mn0.956V0.014)SiO4, FeF2.8Cl0.2MgCoSiO4,MgMn0.9Si0.1O3、Mg0.9925(Co0.985V0.015)SiO4, Mg0.959(Fe0.918V0.082)SiO4,Mg0.95(Ni0.9V0.100)SiO4、窒化マグネシウム、マグネシウムポルフィリン,ポリチオフェン、FeF3,MnF3からなる群から選ばれる少なくとも1種である、請求項3に記載の非水電解質マグネシウム系二次電池。
- 有機オニウムカチオンが対称構造を有する、請求項1~5のいずれか1項に記載の非水電解質マグネシウム系二次電池。
- 有機オニウムカチオンがアンモニウムであり、アンモニウムの窒素原子に結合する4つの基の炭素数の差が1又は0である、請求項1~5のいずれか1項に記載の非水電解質マグネシウム系二次電池。
- 有機オニウムカチオンが、テトラメチルアンモニウム(N1111)、テトラエチルアンモニウム(N2222)、テトラn-プロピルアンモニウム(N3333)、テトラn-ブチルアンモニウム(N4444)、テトラn-ペンチルアンモニウム(N5555)、5-アゾニアスピロ[4.4]ノナン(AS44)、テトラエチルホスホニウム(P2222)及び5-フォスフォニアスピロ[4.4]ノナン(PS44)からなる群から選ばれる、請求項1~5のいずれか1項に記載の非水電解質マグネシウム系二次電池。
- 有機オニウムカチオンが、テトラエチルアンモニウム(N2222)又は5-アゾニアスピロ[4.4]ノナン(AS44)である、請求項10に記載の非水電解質マグネシウム系二次電池。
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CN111468141A (zh) * | 2019-11-21 | 2020-07-31 | 中山大学 | 一种二维非晶-晶态异质结的制备方法及其应用 |
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CN109638257B (zh) * | 2018-12-18 | 2022-04-26 | 中科廊坊过程工程研究院 | 一种复合型五氧化二钒系材料及其制备方法和用途 |
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CN109950537A (zh) * | 2019-03-26 | 2019-06-28 | 宁波职业技术学院 | 一种掺杂硅酸镍镁的镁离子电池正极材料及其制备方法 |
CN112133964A (zh) * | 2020-09-23 | 2020-12-25 | 杭州怡莱珂科技有限公司 | 一种镁离子电解质溶液及其制备方法 |
WO2023097474A1 (zh) * | 2021-11-30 | 2023-06-08 | 宁德时代新能源科技股份有限公司 | 二次电池、电池模块、电池包及用电装置 |
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