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Vacancy‐Controlled Na + Superion Conduction in Na 11 Sn 2 PS 12
Author(s) -
Duchardt Marc,
Ruschewitz Uwe,
Adams Stefan,
Dehnen Stefanie,
Roling Bernhard
Publication year - 2018
Publication title -
angewandte chemie
Language(s) - English
Resource type - Journals
eISSN - 1521-3757
pISSN - 0044-8249
DOI - 10.1002/ange.201712769
Subject(s) - fast ion conductor , conductivity , electrolyte , valence (chemistry) , ion , lithium (medication) , vacancy defect , materials science , ionic conductivity , chemistry , inorganic chemistry , crystallography , analytical chemistry (journal) , electrode , medicine , organic chemistry , chromatography , endocrinology
Abstract Highly conductive solid electrolytes are crucial to the development of efficient all‐solid‐state batteries. Meanwhile, the ion conductivities of lithium solid electrolytes match those of liquid electrolytes used in commercial Li + ion batteries. However, concerns about the future availability and the price of lithium made Na + ion conductors come into the spotlight in recent years. Here we present the superionic conductor Na 11 Sn 2 PS 12 , which possesses a room temperature Na + conductivity close to 4 mS cm −1 , thus the highest value known to date for sulfide‐based solids. Structure determination based on synchrotron X‐ray powder diffraction data proves the existence of Na + vacancies. As confirmed by bond valence site energy calculations, the vacancies interconnect ion migration pathways in a 3D manner, hence enabling high Na + conductivity. The results indicate that sodium electrolytes are about to equal the performance of their lithium counterparts.

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