Solution for Forming Layer That Contains Solid Electrolyte for All-Solid-State Alkali Metal Secondary Batteries, Coated Active Material Particles, Electrode, All-Solid-State Alkali Metal Secondary Battery and Method for Manufacturing Same

US2016240838A1 · US · A1

Patent metadata
FieldValue
Publication numberUS-2016240838-A1
Application numberUS-201415026817-A
CountryUS
Kind codeA1
Filing dateSep 30, 2014
Priority dateOct 3, 2013
Publication dateAug 18, 2016
Grant date

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Abstract

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A forming solution for forming a layer containing a solid electrolyte for an all-solid-state alkali metal secondary battery comprising a component derived from A 2 S and M x S y (A is selected from Li and Na; M is selected from P, Si, Ge, B, Al and Ga; and x and y are a number that gives a stoichiometric ratio in accordance with a species of M) as a starting material for manufacturing the solid electrolyte, a nonpolar organic solvent and a polar organic solvent having a polarity value higher than that of the nonpolar organic solvent by 0.3 or more.

First claim

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What is claimed is: 1 . A forming solution for forming a layer containing a solid electrolyte for an all-solid-state alkali metal secondary battery comprising a component derived from A 2 S and M x S y (A is selected from Li and Na; M is selected from P, Si, Ge, B, Al and Ga; and x and y are a number that gives a stoichiometric ratio in accordance with a species of M) as a starting material for manufacturing the solid electrolyte, a nonpolar organic solvent and a polar organic solvent having a polarity value higher than that of the nonpolar organic solvent by 0.3 or more. 2 . The forming solution for forming a layer containing a solid electrolyte for an all-solid-state alkali metal secondary battery of claim 1 , comprising a component derived from Li 2 S and M x S y (M is selected from P, Si, Ge, B, Al and Ga; and x and y are a number that gives a stoichiometric ratio in accordance with a species of M) as a starting material for manufacturing the solid electrolyte, the nonpolar organic solvent and the polar organic solvent having a polarity value higher than that of the nonpolar organic solvent by 0.3 or more. 3 . The forming solution for forming a layer containing a solid electrolyte for an all-solid-state alkali metal secondary battery of claim 1 , comprising a component derived from Na 2 S and M x S y (M is selected from P, Si, Ge, B, Al and Ga; and x and y are a number that gives a stoichiometric ratio in accordance with a species of M) as a starting material for manufacturing the solid electrolyte, the nonpolar organic solvent and the polar organic solvent having a polarity value higher than that of the nonpolar organic solvent by 0.3 or more. 4 . The forming solution for forming a layer containing a solid electrolyte for an all-solid-state alkali metal secondary battery of claim 1 , wherein the forming solution is a solution obtained by adding a starting material into the nonpolar organic solvent to obtain a mixed liquid and subsequently adding the polar organic solvent into the mixed liquid. 5 . The forming solution for forming a layer containing a solid electrolyte for an all-solid-state alkali metal secondary battery of claim 1 , wherein the nonpolar organic solvent has a polarity value of less than 0.5, and the polar organic solvent has a polarity value of 0.5 or more. 6 . The forming solution for forming a layer containing a solid electrolyte for an all-solid-state alkali metal secondary battery of claim 1 , wherein the nonpolar organic solvent is selected from hydrocarbons having a carbon number of 5 to 10, and the polar organic solvent is selected from aliphatic alcohols having a carbon number of 1 to 4, formamide, formamide substituted with an alkyl group having a carbon number of 1 to 4, and hydrazine-based compounds. 7 . The forming solution for forming a layer containing a solid electrolyte for an all-solid-state alkali metal secondary battery of claim 6 , wherein the nonpolar organic solvent is n-hexane, and the polar organic solvent is N-methylformamide or ethylenediamine. 8 . The forming solution for forming a layer containing a solid electrolyte for an all-solid-state alkali metal secondary battery of claim 1 , wherein the solid electrolyte is Li 2 S-M x S y containing Li 2 S and M x S y at a ratio of 50:50 to 90:10 (molar ratio), and M x S y is P 2 S 5 . 9 . The forming solution for forming a layer containing a solid electrolyte for an all-solid-state alkali metal secondary battery of claim 1 , wherein the solid electrolyte is Na 2 S-M x S y containing Na 2 S and M x S y at a ratio of 50:50 to 90:10 (molar ratio), and M x S y is P 2 S 5 . 10 . The forming solution for forming a layer containing a solid electrolyte for an all-solid-state alkali metal secondary battery of claim 1 , wherein the layer containing a solid electrolyte is a solid electrolyte layer, a positive electrode, and/or a negative electrode. 11 . An all-solid-state alkali metal secondary battery comprising a positive electrode, a negative electrode and a solid electrolyte layer positioned between the positive electrode and the negative electrode, wherein one of the solid electrolyte layer, the positive electrode and the negative electrode is formed by applying of the forming solution of claim 1 and drying. 12 . A method for manufacturing an all-solid-state alkali metal secondary battery comprising a positive electrode, a negative electrode and a solid electrolyte layer positioned between the positive electrode and the negative electrode, wherein one of the solid electrolyte layer, the positive electrode and the negative electrode is formed by applying of the forming solution of claim 1 and drying. 13 . A coated active material particle for a positive electrode and/or a negative electrode of an all-solid-state alkali metal secondary battery, wherein the coated active material particle includes an active material particle and a layer containing a solid electrolyte that coats a surface along an outer shape thereof; and the solid electrolyte contains A 2 S and M x S y (A is selected from Li and Na; M is selected from P, Si, Ge, B, Al and Ga; and x and y are a number that gives a stoichiometric ratio in accordance with a species of M). 14 . The coated active material particle of claim 13 , wherein the layer containing the solid electrolyte is layer formed by applying the forming solution for forming a layer containing a solid electrolyte for an all-solid-state alkali metal secondary battery of claim 1 to the surface of the active material particle and drying. 15 . An electrode for an all-solid-state alkali metal secondary battery comprising an assembly of a plurality of active material particles and a layer containing a solid electrolyte that coats a surface along an outer shape of individual active material particles and fills a gap between the active material particles, wherein the solid electrolyte contains A 2 S and M x S y (A is selected from Li and Na; M is selected from P, Si, Ge, B, Al and Ga; and x and y are a number that gives a stoichiometric ratio in accordance with a species of M); and the electrode is a positive electrode and/or a negative electrode. 16 . The electrode of claim 1 , wherein the layer containing the solid electrolyte that fills the gap between the active materials has a thickness of 10 to 1000 nm. 17 . The electrode of claim 1 , wherein the electrode is obtained by pressing the coated active material particles of claim 13 .

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Classifications

  • Processes of manufacture · CPC title

  • as layered products · CPC title

  • Construction or manufacture · CPC title

  • inorganic · CPC title

  • Electrodes for accumulators with non-aqueous electrolyte, e.g. for lithium-accumulators; Processes of manufacture thereof · CPC title

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What does patent US2016240838A1 cover?
A forming solution for forming a layer containing a solid electrolyte for an all-solid-state alkali metal secondary battery comprising a component derived from A 2 S and M x S y (A is selected from Li and Na; M is selected from P, Si, Ge, B, Al and Ga; and x and y are a number that gives a stoichiometric ratio in accordance with a species of M) as a starting material for manufacturing the soli…
Who is the assignee on this patent?
Japan Science & Tech Agency
What technology area does this patent fall under?
Primary CPC classification H01M4/0407. Mapped technology areas include Electricity.
When was this patent published?
Publication date Thu Aug 18 2016 00:00:00 GMT+0000 (Coordinated Universal Time) (A1). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 8 related publications on this page (citations in our corpus or others sharing the same primary CPC).