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Achievement of high ionic conductivity and electrochemical stability by W/Sn-doped Na3SbS4 conductors designed for all-solid-state sodium-ion batteries
Achievement of high ionic conductivity and electrochemical stability by W/Sn-doped Na3SbS4 conductors designed for all-solid-state sodium-ion batteries† All-solid-state sodium-ion batteries are emerging as a highly promising substitute for lithium-ion batteries, primarily owing to their rich natural resources and superior safety performance.
Double regulatory effect of As‐designed Na3Sb1‐xAsxS4 sodium superionic conductors
CONFLICT OF INTEREST STATEMENT The authors declare that they have no known competing financial interests or personal relationships that could have appeared to influence the work reported in this paper. REFERENCES 1, , , , , . Scaling relations for ionic and thermal transport in the Na+ ionic conductor Na3PS4. ACS Materials Letters. 2022, 4[12]: 2491–2498. 2, , , , , . Stable all-solid-state sodium-sulfur batteries for low-temperature operation enabled by sodium alloy anode and confined sulfur cathode.
Excellent sodium ion conductivity and air stability of manganese-substituted Na3SbS4 solid electrolytes
Excellent sodium ion conductivity and air stability of manganese-substituted Na3SbS4 solid electrolytes Solid electrolytes are promising candidates for addressing energy and environmental problems due to their excellent electrical conductivity and extremely high safety. To date, only a few alternative materials can meet the high ionic conductivity requirements of at least ≥1 mS cm-1 when using nontoxic and economical elements.
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