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A Multifunctional Interlocked Binder with Synergistic In Situ Covalent and Hydrogen Bonding for High‐Performance Si Anode in Li‐ion Batteries

Silicon has garnered significant attention as a promising anode material for high‐energy density Li‐ion batteries. However, Si can be easily pulverized during cycling, which results in the loss of electrical contact and ultimately shortens battery lifetime. Therefore, the Si anode binder is develope...

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Autores principales: Hwang, Jae Hyuk, Kim, Eunji, Lim, Eun Young, Lee, Woohwa, Kim, Ji‐Oh, Choi, Inhye, Kim, Yong Seok, Kim, Dong‐Gyun, Lee, Jin Hong, Lee, Jong‐Chan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10602578/
https://www.ncbi.nlm.nih.gov/pubmed/37587798
http://dx.doi.org/10.1002/advs.202302144
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author Hwang, Jae Hyuk
Kim, Eunji
Lim, Eun Young
Lee, Woohwa
Kim, Ji‐Oh
Choi, Inhye
Kim, Yong Seok
Kim, Dong‐Gyun
Lee, Jin Hong
Lee, Jong‐Chan
author_facet Hwang, Jae Hyuk
Kim, Eunji
Lim, Eun Young
Lee, Woohwa
Kim, Ji‐Oh
Choi, Inhye
Kim, Yong Seok
Kim, Dong‐Gyun
Lee, Jin Hong
Lee, Jong‐Chan
author_sort Hwang, Jae Hyuk
collection PubMed
description Silicon has garnered significant attention as a promising anode material for high‐energy density Li‐ion batteries. However, Si can be easily pulverized during cycling, which results in the loss of electrical contact and ultimately shortens battery lifetime. Therefore, the Si anode binder is developed to dissipate the enormous mechanical stress of the Si anode with enhanced mechanical properties. However, the interfacial stability between the Si anode binder and Cu current collector should also be improved. Here, a multifunctional thiourea polymer network (TUPN) is proposed as the Si anode binder. The TUPN binder provides the structural integrity of the Si anode with excellent tensile strength and resilience due to the epoxy‐amine and silanol‐epoxy covalent cross‐linking, while exhibiting high extensibility from the random coil chains with the hydrogen bonds of thiourea, oligoether, and isocyanurate moieties. Furthermore, the robust TUPN binder enhances the interfacial stability between the Si anode and current collector by forming a physical interaction. Finally, the facilitated Li‐ion transport and improved electrolyte wettability are realized due to the polar oligoether, thiourea, and isocyanurate moieties, respectively. The concept of this work is to highlight providing directions for the design of polymer binders for next‐generation batteries.
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spelling pubmed-106025782023-10-27 A Multifunctional Interlocked Binder with Synergistic In Situ Covalent and Hydrogen Bonding for High‐Performance Si Anode in Li‐ion Batteries Hwang, Jae Hyuk Kim, Eunji Lim, Eun Young Lee, Woohwa Kim, Ji‐Oh Choi, Inhye Kim, Yong Seok Kim, Dong‐Gyun Lee, Jin Hong Lee, Jong‐Chan Adv Sci (Weinh) Research Articles Silicon has garnered significant attention as a promising anode material for high‐energy density Li‐ion batteries. However, Si can be easily pulverized during cycling, which results in the loss of electrical contact and ultimately shortens battery lifetime. Therefore, the Si anode binder is developed to dissipate the enormous mechanical stress of the Si anode with enhanced mechanical properties. However, the interfacial stability between the Si anode binder and Cu current collector should also be improved. Here, a multifunctional thiourea polymer network (TUPN) is proposed as the Si anode binder. The TUPN binder provides the structural integrity of the Si anode with excellent tensile strength and resilience due to the epoxy‐amine and silanol‐epoxy covalent cross‐linking, while exhibiting high extensibility from the random coil chains with the hydrogen bonds of thiourea, oligoether, and isocyanurate moieties. Furthermore, the robust TUPN binder enhances the interfacial stability between the Si anode and current collector by forming a physical interaction. Finally, the facilitated Li‐ion transport and improved electrolyte wettability are realized due to the polar oligoether, thiourea, and isocyanurate moieties, respectively. The concept of this work is to highlight providing directions for the design of polymer binders for next‐generation batteries. John Wiley and Sons Inc. 2023-08-16 /pmc/articles/PMC10602578/ /pubmed/37587798 http://dx.doi.org/10.1002/advs.202302144 Text en © 2023 The Authors. Advanced Science published by Wiley‐VCH GmbH https://creativecommons.org/licenses/by/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Articles
Hwang, Jae Hyuk
Kim, Eunji
Lim, Eun Young
Lee, Woohwa
Kim, Ji‐Oh
Choi, Inhye
Kim, Yong Seok
Kim, Dong‐Gyun
Lee, Jin Hong
Lee, Jong‐Chan
A Multifunctional Interlocked Binder with Synergistic In Situ Covalent and Hydrogen Bonding for High‐Performance Si Anode in Li‐ion Batteries
title A Multifunctional Interlocked Binder with Synergistic In Situ Covalent and Hydrogen Bonding for High‐Performance Si Anode in Li‐ion Batteries
title_full A Multifunctional Interlocked Binder with Synergistic In Situ Covalent and Hydrogen Bonding for High‐Performance Si Anode in Li‐ion Batteries
title_fullStr A Multifunctional Interlocked Binder with Synergistic In Situ Covalent and Hydrogen Bonding for High‐Performance Si Anode in Li‐ion Batteries
title_full_unstemmed A Multifunctional Interlocked Binder with Synergistic In Situ Covalent and Hydrogen Bonding for High‐Performance Si Anode in Li‐ion Batteries
title_short A Multifunctional Interlocked Binder with Synergistic In Situ Covalent and Hydrogen Bonding for High‐Performance Si Anode in Li‐ion Batteries
title_sort multifunctional interlocked binder with synergistic in situ covalent and hydrogen bonding for high‐performance si anode in li‐ion batteries
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10602578/
https://www.ncbi.nlm.nih.gov/pubmed/37587798
http://dx.doi.org/10.1002/advs.202302144
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