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Operando Characterization and Theoretical Modeling of Metal|Electrolyte Interphase Growth Kinetics in Solid-State Batteries. Part II: Modeling
[Image: see text] Understanding the interfacial dynamics of batteries is crucial to control degradation and increase electrochemical performance and cycling life. If the chemical potential of a negative electrode material lies outside of the stability window of an electrolyte (either solid or liquid...
Autores principales: | , , , , |
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Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
American Chemical Society
2023
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Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9933423/ https://www.ncbi.nlm.nih.gov/pubmed/36818589 http://dx.doi.org/10.1021/acs.chemmater.2c03131 |
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author | Williams, Nicholas J. Quérel, Edouard Seymour, Ieuan D. Skinner, Stephen J. Aguadero, Ainara |
author_facet | Williams, Nicholas J. Quérel, Edouard Seymour, Ieuan D. Skinner, Stephen J. Aguadero, Ainara |
author_sort | Williams, Nicholas J. |
collection | PubMed |
description | [Image: see text] Understanding the interfacial dynamics of batteries is crucial to control degradation and increase electrochemical performance and cycling life. If the chemical potential of a negative electrode material lies outside of the stability window of an electrolyte (either solid or liquid), a decomposition layer (interphase) will form at the interface. To better understand and control degradation at interfaces in batteries, theoretical models describing the rate of formation of these interphases are required. This study focuses on the growth kinetics of the interphase forming between solid electrolytes and metallic negative electrodes in solid-state batteries. More specifically, we demonstrate that the rate of interphase formation and metal plating during charge can be accurately described by adapting the theory of coupled ion-electron transfer (CIET). The model is validated by fitting experimental data presented in the first part of this study. The data was collected operando as a Na metal layer was plated on top of a NaSICON solid electrolyte (Na(3.4)Zr(2)Si(2.4)P(0.6)O(12) or NZSP) inside an XPS chamber. This study highlights the depth of information which can be extracted from this single operando experiment and is widely applicable to other solid-state electrolyte systems. |
format | Online Article Text |
id | pubmed-9933423 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2023 |
publisher | American Chemical Society |
record_format | MEDLINE/PubMed |
spelling | pubmed-99334232023-02-17 Operando Characterization and Theoretical Modeling of Metal|Electrolyte Interphase Growth Kinetics in Solid-State Batteries. Part II: Modeling Williams, Nicholas J. Quérel, Edouard Seymour, Ieuan D. Skinner, Stephen J. Aguadero, Ainara Chem Mater [Image: see text] Understanding the interfacial dynamics of batteries is crucial to control degradation and increase electrochemical performance and cycling life. If the chemical potential of a negative electrode material lies outside of the stability window of an electrolyte (either solid or liquid), a decomposition layer (interphase) will form at the interface. To better understand and control degradation at interfaces in batteries, theoretical models describing the rate of formation of these interphases are required. This study focuses on the growth kinetics of the interphase forming between solid electrolytes and metallic negative electrodes in solid-state batteries. More specifically, we demonstrate that the rate of interphase formation and metal plating during charge can be accurately described by adapting the theory of coupled ion-electron transfer (CIET). The model is validated by fitting experimental data presented in the first part of this study. The data was collected operando as a Na metal layer was plated on top of a NaSICON solid electrolyte (Na(3.4)Zr(2)Si(2.4)P(0.6)O(12) or NZSP) inside an XPS chamber. This study highlights the depth of information which can be extracted from this single operando experiment and is widely applicable to other solid-state electrolyte systems. American Chemical Society 2023-01-28 /pmc/articles/PMC9933423/ /pubmed/36818589 http://dx.doi.org/10.1021/acs.chemmater.2c03131 Text en © 2023 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/). |
spellingShingle | Williams, Nicholas J. Quérel, Edouard Seymour, Ieuan D. Skinner, Stephen J. Aguadero, Ainara Operando Characterization and Theoretical Modeling of Metal|Electrolyte Interphase Growth Kinetics in Solid-State Batteries. Part II: Modeling |
title | Operando Characterization
and Theoretical Modeling
of Metal|Electrolyte Interphase Growth Kinetics in Solid-State Batteries.
Part II: Modeling |
title_full | Operando Characterization
and Theoretical Modeling
of Metal|Electrolyte Interphase Growth Kinetics in Solid-State Batteries.
Part II: Modeling |
title_fullStr | Operando Characterization
and Theoretical Modeling
of Metal|Electrolyte Interphase Growth Kinetics in Solid-State Batteries.
Part II: Modeling |
title_full_unstemmed | Operando Characterization
and Theoretical Modeling
of Metal|Electrolyte Interphase Growth Kinetics in Solid-State Batteries.
Part II: Modeling |
title_short | Operando Characterization
and Theoretical Modeling
of Metal|Electrolyte Interphase Growth Kinetics in Solid-State Batteries.
Part II: Modeling |
title_sort | operando characterization
and theoretical modeling
of metal|electrolyte interphase growth kinetics in solid-state batteries.
part ii: modeling |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9933423/ https://www.ncbi.nlm.nih.gov/pubmed/36818589 http://dx.doi.org/10.1021/acs.chemmater.2c03131 |
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