化学
电解质
杂质
电化学
水溶液
快离子导体
离子电导率
机械化学
无机化学
相(物质)
无定形固体
化学工程
钠
金属
电导率
磷酸钠
溶解
离子键合
基质(化学分析)
卤化物
固溶体
纳米晶材料
作者
Romain Dufrene,David Mathiron,Christian Masquelier,Pierre Gibot
标识
DOI:10.1021/acs.inorgchem.6c03197
摘要
Abstract To improve battery power density, sodium all-solid-state batteries, using a solid electrolyte and sodium metal (Na0) anode, are part of the next generation of electrochemical storage systems. Among potential solid electrolyte materials, Na3PS4, sodium ortho-thiophosphate, is attractive because it possesses high ionic conductivity and good compressibility. However, it reacts with Na0 and is unstable when exposed to moisture. To address these stability issues, oxy-thiophosphate compositions (Na3PS4-xOx, 1 < x < 3) are being considered. For instance, the Na3PS3O phase has been reported to be stable versus Na0. Here, we report on the formation of the Na3PS3O phase using aqueous or mechanochemical synthesis and the impact of the physical state on the conduction properties. The preparation of a pure Na3PS3O material is challenging, as other structural units than PS3O3– are always present, regardless of the synthesis method used. Crystalline Na3PS3O containing PS2O23– and PSO33– impurities can be synthesized from aqueous synthesis, or that containing P2O74– impurities can be obtained via mechanochemistry followed by annealing. A pure amorphous Na3PS3O phase could not be synthesized, as the direct ball-milling synthesis (regardless of the precursors used) led to the formation of a PS43– matrix containing diverse oxy-thiophosphate and phosphate species.
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