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A Dual Functional Artificial SEI Layer Based on a Facile Surface Chemistry for Stable Lithium Metal Anode

Solid electrolyte interphase (SEI) on a Li anode is critical to the interface stability and cycle life of Li metal batteries. On the one hand, components of SEI with the passivation effect can effectively hinder the interfacial side reactions to promote long-term cycling stability. On the other hand...

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Autores principales: Ma, Yue, Wu, Feng, Chen, Nan, Yang, Tianyu, Liang, Yaohui, Sun, Zhaoyang, Luo, Guangqiu, Du, Jianguo, Shang, Yanxin, Feng, Mai, Wen, Ziyue, Li, Li, Chen, Renjie
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9412686/
https://www.ncbi.nlm.nih.gov/pubmed/36014438
http://dx.doi.org/10.3390/molecules27165199
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author Ma, Yue
Wu, Feng
Chen, Nan
Yang, Tianyu
Liang, Yaohui
Sun, Zhaoyang
Luo, Guangqiu
Du, Jianguo
Shang, Yanxin
Feng, Mai
Wen, Ziyue
Li, Li
Chen, Renjie
author_facet Ma, Yue
Wu, Feng
Chen, Nan
Yang, Tianyu
Liang, Yaohui
Sun, Zhaoyang
Luo, Guangqiu
Du, Jianguo
Shang, Yanxin
Feng, Mai
Wen, Ziyue
Li, Li
Chen, Renjie
author_sort Ma, Yue
collection PubMed
description Solid electrolyte interphase (SEI) on a Li anode is critical to the interface stability and cycle life of Li metal batteries. On the one hand, components of SEI with the passivation effect can effectively hinder the interfacial side reactions to promote long-term cycling stability. On the other hand, SEI species that exhibit the active site effect can reduce the Li nucleation barrier and guide Li deposition homogeneously. However, strategies that only focus on a separated effect make it difficult to realize an ideal overall performance of a Li anode. Herein, a dual functional artificial SEI layer simultaneously combining the passivation effect and the active site effect is proposed and constructed via a facial surface chemistry method. Simultaneously, the formed LiF component effectively passivates the anode/electrolyte interface and contributes to the long-term stable cycling performance, while the Li-Mg solid solution alloy with the active site effect promotes the transmission of Li(+) and guides homogeneous Li deposition with a low energy barrier. Benefiting from these advantages, the Li||Li cell with the modified anode performs with a lower nucleation overpotential of 2.3 mV, and an ultralong cycling lifetime of over 2000 h at the current density of 1 mA cm(−2), while the Li||LiFePO(4) full battery maintains a capacity retention of 84.6% at rate of 1 C after 300 cycles.
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spelling pubmed-94126862022-08-27 A Dual Functional Artificial SEI Layer Based on a Facile Surface Chemistry for Stable Lithium Metal Anode Ma, Yue Wu, Feng Chen, Nan Yang, Tianyu Liang, Yaohui Sun, Zhaoyang Luo, Guangqiu Du, Jianguo Shang, Yanxin Feng, Mai Wen, Ziyue Li, Li Chen, Renjie Molecules Article Solid electrolyte interphase (SEI) on a Li anode is critical to the interface stability and cycle life of Li metal batteries. On the one hand, components of SEI with the passivation effect can effectively hinder the interfacial side reactions to promote long-term cycling stability. On the other hand, SEI species that exhibit the active site effect can reduce the Li nucleation barrier and guide Li deposition homogeneously. However, strategies that only focus on a separated effect make it difficult to realize an ideal overall performance of a Li anode. Herein, a dual functional artificial SEI layer simultaneously combining the passivation effect and the active site effect is proposed and constructed via a facial surface chemistry method. Simultaneously, the formed LiF component effectively passivates the anode/electrolyte interface and contributes to the long-term stable cycling performance, while the Li-Mg solid solution alloy with the active site effect promotes the transmission of Li(+) and guides homogeneous Li deposition with a low energy barrier. Benefiting from these advantages, the Li||Li cell with the modified anode performs with a lower nucleation overpotential of 2.3 mV, and an ultralong cycling lifetime of over 2000 h at the current density of 1 mA cm(−2), while the Li||LiFePO(4) full battery maintains a capacity retention of 84.6% at rate of 1 C after 300 cycles. MDPI 2022-08-15 /pmc/articles/PMC9412686/ /pubmed/36014438 http://dx.doi.org/10.3390/molecules27165199 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Ma, Yue
Wu, Feng
Chen, Nan
Yang, Tianyu
Liang, Yaohui
Sun, Zhaoyang
Luo, Guangqiu
Du, Jianguo
Shang, Yanxin
Feng, Mai
Wen, Ziyue
Li, Li
Chen, Renjie
A Dual Functional Artificial SEI Layer Based on a Facile Surface Chemistry for Stable Lithium Metal Anode
title A Dual Functional Artificial SEI Layer Based on a Facile Surface Chemistry for Stable Lithium Metal Anode
title_full A Dual Functional Artificial SEI Layer Based on a Facile Surface Chemistry for Stable Lithium Metal Anode
title_fullStr A Dual Functional Artificial SEI Layer Based on a Facile Surface Chemistry for Stable Lithium Metal Anode
title_full_unstemmed A Dual Functional Artificial SEI Layer Based on a Facile Surface Chemistry for Stable Lithium Metal Anode
title_short A Dual Functional Artificial SEI Layer Based on a Facile Surface Chemistry for Stable Lithium Metal Anode
title_sort dual functional artificial sei layer based on a facile surface chemistry for stable lithium metal anode
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9412686/
https://www.ncbi.nlm.nih.gov/pubmed/36014438
http://dx.doi.org/10.3390/molecules27165199
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