Two-step growth mechanism of the solid electrolyte interphase in argyrodyte/Li-metal contacts

Fuente: arXiv
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Autores principales: Chaney, Gracie, Golov, Andrey, van Roekeghem, Ambroise, Carrasco, Javier, Mingo, Natalio
Formato: Preprint
Publicado: 2024
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author Chaney, Gracie
Golov, Andrey
van Roekeghem, Ambroise
Carrasco, Javier
Mingo, Natalio
author_facet Chaney, Gracie
Golov, Andrey
van Roekeghem, Ambroise
Carrasco, Javier
Mingo, Natalio
contents The structure and growth of the Solid Electrolyte Interphase (SEI) region between an electrolyte and an electrode is one of the most fundamental, yet less-well understood phenomena in solid-state batteries. We present a parameter-free atomistic simulation of the SEI growth for one of the currently promising solid electrolytes (Li$_6$PS$_5$Cl), based on \textit{ab initio} trained machine learning (ML) interatomic potentials, for over 30,000 atoms during 10 ns, well-beyond the capabilities of conventional MD. This unveils a two-step growth mechanism: Li-argyrodite chemical reaction leading to the formation of an amorphous phase, followed by a kinetically slower crystallization of the reaction products into a 5Li$_2$SLi$_3$PLiCl solid solution. The simulation results support the recent, experimentally founded hypothesis of an indirect pathway of electrolyte reduction. These findings shed light on the intricate processes governing SEI evolution, providing a valuable foundation for the design and optimization of next-generation solid-state batteries.
format Preprint
id arxiv_https___arxiv_org_abs_2402_04095
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Two-step growth mechanism of the solid electrolyte interphase in argyrodyte/Li-metal contacts
Chaney, Gracie
Golov, Andrey
van Roekeghem, Ambroise
Carrasco, Javier
Mingo, Natalio
Materials Science
The structure and growth of the Solid Electrolyte Interphase (SEI) region between an electrolyte and an electrode is one of the most fundamental, yet less-well understood phenomena in solid-state batteries. We present a parameter-free atomistic simulation of the SEI growth for one of the currently promising solid electrolytes (Li$_6$PS$_5$Cl), based on \textit{ab initio} trained machine learning (ML) interatomic potentials, for over 30,000 atoms during 10 ns, well-beyond the capabilities of conventional MD. This unveils a two-step growth mechanism: Li-argyrodite chemical reaction leading to the formation of an amorphous phase, followed by a kinetically slower crystallization of the reaction products into a 5Li$_2$SLi$_3$PLiCl solid solution. The simulation results support the recent, experimentally founded hypothesis of an indirect pathway of electrolyte reduction. These findings shed light on the intricate processes governing SEI evolution, providing a valuable foundation for the design and optimization of next-generation solid-state batteries.
title Two-step growth mechanism of the solid electrolyte interphase in argyrodyte/Li-metal contacts
topic Materials Science
url https://arxiv.org/abs/2402.04095