Cargando…

Oxide Coating Role on the Bulk Structural Stability of Active LiMn(2)O(4) Cathodes

[Image: see text] The protective coating of the electrode materials is a known source of improvement of the cycling performances in battery devices. In the case of the LiMn(2)O(4) cathodes, the coating with a thin alumina layer has been proven to show performance efficiency. However, the precise mec...

Descripción completa

Detalles Bibliográficos
Autores principales: Paparoni, Francesco, Mijit, Emin, Darjazi, Hamideh, Nobili, Francesco, Zitolo, Andrea, Di Cicco, Andrea, Parmar, Rahul, Gunnella, Roberto, Rezvani, S. Javad
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2023
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10184565/
https://www.ncbi.nlm.nih.gov/pubmed/37197381
http://dx.doi.org/10.1021/acs.jpcc.3c00342
_version_ 1785042171986968576
author Paparoni, Francesco
Mijit, Emin
Darjazi, Hamideh
Nobili, Francesco
Zitolo, Andrea
Di Cicco, Andrea
Parmar, Rahul
Gunnella, Roberto
Rezvani, S. Javad
author_facet Paparoni, Francesco
Mijit, Emin
Darjazi, Hamideh
Nobili, Francesco
Zitolo, Andrea
Di Cicco, Andrea
Parmar, Rahul
Gunnella, Roberto
Rezvani, S. Javad
author_sort Paparoni, Francesco
collection PubMed
description [Image: see text] The protective coating of the electrode materials is a known source of improvement of the cycling performances in battery devices. In the case of the LiMn(2)O(4) cathodes, the coating with a thin alumina layer has been proven to show performance efficiency. However, the precise mechanism of its effect on the performance improvement of the electrodes is still not clear. In this work we investigate alumina-coating-induced effects on the structural dynamics of the active materials in correlation to the modified solid electrolyte interface dynamics. The local structures of coated and uncoated samples at different galvanostatic points are studied by both soft X-ray absorption measurements at the Mn L-edges and O K-edge (in total electron yield mode) and hard X-ray absorption at the Mn K-edge (in transmission mode). The different probing depths of the employed techniques allowed us to study the structural dynamics both at the surface and within the bulk of the active material. We demonstrate that the coating successfully hinders the Mn(3+) disproportionation and, hence, the degradation of the active material. Side products (layered Li(2)MnO(3) and MnO) and changes in the local crystal symmetry with formation of Li(2)Mn(2)O(4) are observed in uncoated electrodes. The role of alumina coating on the stability of the passivation layer and its consequent effect on the structural stability of the bulk active materials is discussed.
format Online
Article
Text
id pubmed-10184565
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher American Chemical Society
record_format MEDLINE/PubMed
spelling pubmed-101845652023-05-16 Oxide Coating Role on the Bulk Structural Stability of Active LiMn(2)O(4) Cathodes Paparoni, Francesco Mijit, Emin Darjazi, Hamideh Nobili, Francesco Zitolo, Andrea Di Cicco, Andrea Parmar, Rahul Gunnella, Roberto Rezvani, S. Javad J Phys Chem C Nanomater Interfaces [Image: see text] The protective coating of the electrode materials is a known source of improvement of the cycling performances in battery devices. In the case of the LiMn(2)O(4) cathodes, the coating with a thin alumina layer has been proven to show performance efficiency. However, the precise mechanism of its effect on the performance improvement of the electrodes is still not clear. In this work we investigate alumina-coating-induced effects on the structural dynamics of the active materials in correlation to the modified solid electrolyte interface dynamics. The local structures of coated and uncoated samples at different galvanostatic points are studied by both soft X-ray absorption measurements at the Mn L-edges and O K-edge (in total electron yield mode) and hard X-ray absorption at the Mn K-edge (in transmission mode). The different probing depths of the employed techniques allowed us to study the structural dynamics both at the surface and within the bulk of the active material. We demonstrate that the coating successfully hinders the Mn(3+) disproportionation and, hence, the degradation of the active material. Side products (layered Li(2)MnO(3) and MnO) and changes in the local crystal symmetry with formation of Li(2)Mn(2)O(4) are observed in uncoated electrodes. The role of alumina coating on the stability of the passivation layer and its consequent effect on the structural stability of the bulk active materials is discussed. American Chemical Society 2023-05-03 /pmc/articles/PMC10184565/ /pubmed/37197381 http://dx.doi.org/10.1021/acs.jpcc.3c00342 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 Paparoni, Francesco
Mijit, Emin
Darjazi, Hamideh
Nobili, Francesco
Zitolo, Andrea
Di Cicco, Andrea
Parmar, Rahul
Gunnella, Roberto
Rezvani, S. Javad
Oxide Coating Role on the Bulk Structural Stability of Active LiMn(2)O(4) Cathodes
title Oxide Coating Role on the Bulk Structural Stability of Active LiMn(2)O(4) Cathodes
title_full Oxide Coating Role on the Bulk Structural Stability of Active LiMn(2)O(4) Cathodes
title_fullStr Oxide Coating Role on the Bulk Structural Stability of Active LiMn(2)O(4) Cathodes
title_full_unstemmed Oxide Coating Role on the Bulk Structural Stability of Active LiMn(2)O(4) Cathodes
title_short Oxide Coating Role on the Bulk Structural Stability of Active LiMn(2)O(4) Cathodes
title_sort oxide coating role on the bulk structural stability of active limn(2)o(4) cathodes
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10184565/
https://www.ncbi.nlm.nih.gov/pubmed/37197381
http://dx.doi.org/10.1021/acs.jpcc.3c00342
work_keys_str_mv AT paparonifrancesco oxidecoatingroleonthebulkstructuralstabilityofactivelimn2o4cathodes
AT mijitemin oxidecoatingroleonthebulkstructuralstabilityofactivelimn2o4cathodes
AT darjazihamideh oxidecoatingroleonthebulkstructuralstabilityofactivelimn2o4cathodes
AT nobilifrancesco oxidecoatingroleonthebulkstructuralstabilityofactivelimn2o4cathodes
AT zitoloandrea oxidecoatingroleonthebulkstructuralstabilityofactivelimn2o4cathodes
AT diciccoandrea oxidecoatingroleonthebulkstructuralstabilityofactivelimn2o4cathodes
AT parmarrahul oxidecoatingroleonthebulkstructuralstabilityofactivelimn2o4cathodes
AT gunnellaroberto oxidecoatingroleonthebulkstructuralstabilityofactivelimn2o4cathodes
AT rezvanisjavad oxidecoatingroleonthebulkstructuralstabilityofactivelimn2o4cathodes