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High Conductivity of Superionic-Glass-in-Ionic-Liquid Solutions

机译:超离子玻璃离子液体溶液的高电导率

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As a further example of the extraordinary solvent powers of ambient temperature molten salts (ATMS or "ionic liquids") we demonstrate that lithium thiophosphate glasses, well known for their unicationic conduction mechanism, and high ambient conductivity, dissolve in the ATMS ethylmethylimidazolium tetrafluoroborate up to 30 mol percent. Remarkably, the conductivity of this solution is higher than that of a solution of the same lithium salt content made with the salt lithium TFSI [bis(trifluoromethanesulfonyl)imide] which bestows high conductivity on most other solvents. The glass-saturated melt has almost the same conductivity as the glass itself. However their glass temperatures differ by some 200 K so it is clear that the solution retains little if any of the decoupled Li~+ conduction mechanism of the glass. It may nevertheless make a suitable electrolyte for lithium cells of a novel kind. Since the ionic liquids may be incorporated in polymer gel electrolytes without significant loss of conductivity, the present solutions may prove valuable for solid-state electrochemical device applications.
机译:作为环境温度熔融盐(ATMS或“离子液体”)非凡溶剂能力的又一个例子,我们证明了硫代磷酸锂玻璃因其单离子传导机理和高环境电导率而闻名,它溶解在ATMS中的四氟硼酸乙基甲基咪唑鎓盐直至30摩尔%。显着地,该溶液的电导率高于用盐锂TFSI [双(三氟甲磺酰基)酰亚胺]制成的相同锂盐含量的溶液的电导率,该溶液赋予大多数其他溶剂以高电导率。玻璃饱和熔体的导电率几乎与玻璃本身相同。但是,它们的玻璃温度相差约200 K,因此很明显,即使有任何解耦的玻璃Li +传导机理,溶液也几乎没有保留。尽管如此,它仍可以制成适用于新型锂电池的电解质。由于可以将离子液体掺入聚合物凝胶电解质中而没有明显的导电性损失,因此本发明的溶液可以证明对于固态电化学装置的应用是有价值的。

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