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Interfacially Induced Cascading Failure in Graphite‐Silicon Composite Anodes

Silicon (Si) has been well recognized as a promising candidate to replace graphite because of its earth abundance and high‐capacity storage, but its large volume changes upon lithiation/delithiation and the consequential material fracturing, loss of electrical contact, and over‐consumption of the el...

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Autores principales: Son, Seoung‐Bum, Cao, Lei, Yoon, Taeho, Cresce, Arthur, Hafner, Simon E., Liu, Jun, Groner, Markus, Xu, Kang, Ban, Chunmei
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6364491/
https://www.ncbi.nlm.nih.gov/pubmed/30775222
http://dx.doi.org/10.1002/advs.201801007
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author Son, Seoung‐Bum
Cao, Lei
Yoon, Taeho
Cresce, Arthur
Hafner, Simon E.
Liu, Jun
Groner, Markus
Xu, Kang
Ban, Chunmei
author_facet Son, Seoung‐Bum
Cao, Lei
Yoon, Taeho
Cresce, Arthur
Hafner, Simon E.
Liu, Jun
Groner, Markus
Xu, Kang
Ban, Chunmei
author_sort Son, Seoung‐Bum
collection PubMed
description Silicon (Si) has been well recognized as a promising candidate to replace graphite because of its earth abundance and high‐capacity storage, but its large volume changes upon lithiation/delithiation and the consequential material fracturing, loss of electrical contact, and over‐consumption of the electrolyte prevent its full application. As a countermeasure for rapid capacity decay, a composite electrode of graphite and Si has been adopted by accommodating Si nanoparticles in a graphite matrix. Such an approach, which involves two materials that interact electrochemically with lithium in the electrode, necessitates an analytical methodology to determine the individual electrochemical behavior of each active material. In this work, a methodology comprising differential plots and integral calculus is established to analyze the complicated interplay among the two active batteries and investigate the failure mechanism underlying capacity fade in the blend electrode. To address performance deficiencies identified by this methodology, an aluminum alkoxide (alucone) surface‐modification strategy is demonstrated to stabilize the structure and electrochemical performance of the graphite‐Si composite electrode. The integrated approach established in this work is of great importance to the design and diagnostics of a multi‐component composite electrode, which is expected to be high interest to other next‐generation battery system.
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spelling pubmed-63644912019-02-15 Interfacially Induced Cascading Failure in Graphite‐Silicon Composite Anodes Son, Seoung‐Bum Cao, Lei Yoon, Taeho Cresce, Arthur Hafner, Simon E. Liu, Jun Groner, Markus Xu, Kang Ban, Chunmei Adv Sci (Weinh) Full Papers Silicon (Si) has been well recognized as a promising candidate to replace graphite because of its earth abundance and high‐capacity storage, but its large volume changes upon lithiation/delithiation and the consequential material fracturing, loss of electrical contact, and over‐consumption of the electrolyte prevent its full application. As a countermeasure for rapid capacity decay, a composite electrode of graphite and Si has been adopted by accommodating Si nanoparticles in a graphite matrix. Such an approach, which involves two materials that interact electrochemically with lithium in the electrode, necessitates an analytical methodology to determine the individual electrochemical behavior of each active material. In this work, a methodology comprising differential plots and integral calculus is established to analyze the complicated interplay among the two active batteries and investigate the failure mechanism underlying capacity fade in the blend electrode. To address performance deficiencies identified by this methodology, an aluminum alkoxide (alucone) surface‐modification strategy is demonstrated to stabilize the structure and electrochemical performance of the graphite‐Si composite electrode. The integrated approach established in this work is of great importance to the design and diagnostics of a multi‐component composite electrode, which is expected to be high interest to other next‐generation battery system. John Wiley and Sons Inc. 2018-12-14 /pmc/articles/PMC6364491/ /pubmed/30775222 http://dx.doi.org/10.1002/advs.201801007 Text en © 2018 The Authors. Published by WILEY‐VCH Verlag GmbH & Co. KGaA, Weinheim This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Full Papers
Son, Seoung‐Bum
Cao, Lei
Yoon, Taeho
Cresce, Arthur
Hafner, Simon E.
Liu, Jun
Groner, Markus
Xu, Kang
Ban, Chunmei
Interfacially Induced Cascading Failure in Graphite‐Silicon Composite Anodes
title Interfacially Induced Cascading Failure in Graphite‐Silicon Composite Anodes
title_full Interfacially Induced Cascading Failure in Graphite‐Silicon Composite Anodes
title_fullStr Interfacially Induced Cascading Failure in Graphite‐Silicon Composite Anodes
title_full_unstemmed Interfacially Induced Cascading Failure in Graphite‐Silicon Composite Anodes
title_short Interfacially Induced Cascading Failure in Graphite‐Silicon Composite Anodes
title_sort interfacially induced cascading failure in graphite‐silicon composite anodes
topic Full Papers
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6364491/
https://www.ncbi.nlm.nih.gov/pubmed/30775222
http://dx.doi.org/10.1002/advs.201801007
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