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Deciphering Fast Ion Transport in Glasses: A Case Study of Sodium and Silver Vitreous Sulfides.

Authors :
Kassem M
Bounazef T
Sokolov A
Bokova M
Fontanari D
Hannon AC
Alekseev I
Bychkov E
Source :
Inorganic chemistry [Inorg Chem] 2022 Aug 15; Vol. 61 (32), pp. 12870-12885. Date of Electronic Publication: 2022 Aug 01.
Publication Year :
2022

Abstract

High-capacity solid-state batteries are promising future products for large-scale energy storage and conversion. Sodium fast ion conductors including glasses and glass ceramics are unparalleled materials for these applications. Rational design and tuning of advanced sodium sulfide electrolytes need a deep insight into the atomic structure and dynamics in relation with ion-transport properties. Using pulsed neutron diffraction and Raman spectroscopy supported by first-principles simulations, we show that preferential diffusion pathways in vitreous sodium and silver sulfides are related to isolated sulfur S <subscript>iso</subscript> , that is, the sulfur species surrounded exclusively by mobile cations with a typical stoichiometry of M/S <subscript>iso</subscript> ≈ 2. The S <subscript>iso</subscript> /S <subscript>tot</subscript> fraction appears to be a reliable descriptor of fast ion transport in glassy sulfide systems over a wide range of ionic conductivities and cation diffusivities. The S <subscript>iso</subscript> fraction increases with mobile cation content x , tetrahedral coordination of the network former and, in case of thiogermanate systems, with germanium disulfide metastability and partial disproportionation, GeS <subscript>2</subscript> → GeS + S, leading to the formation of additional sulfur, transforming into S <subscript>iso</subscript> . A research strategy enabling to achieve extended and interconnected pathways based on isolated sulfur would lead to glassy electrolytes with superior ionic diffusion.

Details

Language :
English
ISSN :
1520-510X
Volume :
61
Issue :
32
Database :
MEDLINE
Journal :
Inorganic chemistry
Publication Type :
Academic Journal
Accession number :
35913056
Full Text :
https://doi.org/10.1021/acs.inorgchem.2c02142