High-power all-solid-state batteries using sulfide superionic conductors
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- Type
- article
- Published
- 2016-03-21
- Cited by
- 2,898
- References
- 50
- OpenAlex
- https://openalex.org/W2321696461
- Semantic Scholar
- https://api.semanticscholar.org/CorpusID:53979567
Keywords
Fast ion conductor, Materials science, Electrolyte, Lithium (medication), Electrical conductor
References
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- Synthesis, structure, and ionic conductivity of solid solution, Li10+δM1+δP2-δS12 (M = Si, Sn).
- Synthesis, structure, and conduction mechanism of the lithium superionic conductor Li10+δGe1+δP2−δS12
- Enhancement of the High‐Rate Capability of Solid‐State Lithium Batteries by Nanoscale Interfacial Modification
- Nanoionics: ion transport and electrochemical storage in confined systems
- Solvated Li-Ion Transfer at Interface Between Graphite and Electrolyte
- Effect of Carbon Matrix Dimensions on the Electrochemical Properties of Na3V2(PO4)3 Nanograins for High‐Performance Symmetric Sodium‐Ion Batteries
- An ultrafast rechargeable aluminium-ion battery
- Lithium batteries: Status, prospects and future
- What are batteries, fuel cells, and supercapacitors?
- 7Li and 19F diffusion coefficients and thermal properties of non-aqueous electrolyte solutions for rechargeable lithium batteries
- LiNbO3-coated LiCoO2 as cathode material for all solid-state lithium secondary batteries
- Mg Intercalation Properties into V 2 O 5 gel/Carbon Composites under High-Rate Condition
- Rechargeable batteries: challenges old and new
- Building better batteries
- Hybridization of electrochemical capacitors and rechargeable batteries: An experimental analysis of
- Lithium-Ion Transfer at the Interface Between Lithium-Ion Conductive Ceramic Electrolyte and Liquid Electrolyte-A Key to Enhancing the Rate Capability of Lithium-Ion Batteries
- Temperature dependence of electrochemical properties of cross-linked poly(ethylene oxide)–lithium bis(trifluoromethanesulfonyl)imide–N-butyl-N-methylpyrrolidinium bis(trifluoromethanesulfonyl)imide solid polymer electrolytes for lithium batteries
- Nanoarchitectured Graphene/CNT@Porous Carbon with Extraordinary Electrical Conductivity and Interconnected Micro/Mesopores for Lithium‐Sulfur Batteries
Cited by
- Cation Mixing Properties toward Co Diffusion at the LiCoO2 Cathode/Sulfide Electrolyte Interface in a Solid-State Battery.
- Na3SbSe4−xSx as Sodium Superionic Conductors
- Effects of Fluorine Doping on Structural and Electrochemical Properties of Li6.25Ga0.25La3Zr2O12 as Electrolytes for Solid-State Lithium Batteries.
- Crystal growth of La2/3-xLi3xTiO3 by the TSFZ method
- Wet-chemical tuning of Li3-xPS4 (0 ≤ x ≤ 0.3) enabled by dual solvents for all-solid-state lithium-ion batteries.
- Concentrated Electrolytes Widen the Operating Temperature Range of Lithium‐Ion Batteries
- Assessment of all-solid-state lithium-ion batteries
- Batteries: Getting solid
- Oxygen substitution effects in Li 10 GeP 2 S 12 solid electrolyte
- Graphene‐Based Nanocomposites for Energy Storage
- High-Performance All-Solid-State Lithium-Sulfur Battery Enabled by a Mixed-Conductive Li2S Nanocomposite.
- Fluorine-Doped Antiperovskite Electrolyte for All-Solid-State Lithium-Ion Batteries.
- Development of Sulfide Solid Electrolytes and Interface Formation Processes for Bulk-Type All-Solid-State Li and Na Batteries
- First-Principles Characterization of the Unknown Crystal Structure and Ionic Conductivity of Li7P2S8I as a Solid Electrolyte for High-Voltage Li Ion Batteries.
- All solid-state polymer electrolytes for high-performance lithium ion batteries
- Perspectives for solid biopolymer electrolytes in dye sensitized solar cell and battery application
- Phase Separation of Li2S/S at Nanoscale during Electrochemical Lithiation of the Solid‐State Lithium–Sulfur Battery Using In Situ TEM
- Structural Insights and 3D Diffusion Pathways within the Lithium Superionic Conductor Li10GeP2S12
- In Situ Monitoring of Fast Li-Ion Conductor Li7P3S11 Crystallization Inside a Hot-Press Setup
- Data-Driven First-Principles Methods for the Study and Design of Alkali Superionic Conductors
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