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Autonomous Self-Healing Strategy for Stable Sodium-Ion Battery: A Case Study of Black Phosphorus Anodes

[Image: see text] Autonomic self-healing (SH), namely, the ability to repair damages from mechanical stress spontaneously, is polarizing attention in the field of new-generation electrochemical devices. This property is highly attractive to enhance the durability of rechargeable Li-ion batteries (LI...

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Autores principales: Callegari, D., Colombi, S., Nitti, A., Simari, C., Nicotera, I., Ferrara, C., Mustarelli, P., Pasini, D., Quartarone, E.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2021
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8041259/
https://www.ncbi.nlm.nih.gov/pubmed/33720685
http://dx.doi.org/10.1021/acsami.0c22464
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author Callegari, D.
Colombi, S.
Nitti, A.
Simari, C.
Nicotera, I.
Ferrara, C.
Mustarelli, P.
Pasini, D.
Quartarone, E.
author_facet Callegari, D.
Colombi, S.
Nitti, A.
Simari, C.
Nicotera, I.
Ferrara, C.
Mustarelli, P.
Pasini, D.
Quartarone, E.
author_sort Callegari, D.
collection PubMed
description [Image: see text] Autonomic self-healing (SH), namely, the ability to repair damages from mechanical stress spontaneously, is polarizing attention in the field of new-generation electrochemical devices. This property is highly attractive to enhance the durability of rechargeable Li-ion batteries (LIBs) or Na-ion batteries (SIBs), where high-performing anode active materials (silicon, phosphorus, etc.) are strongly affected by volume expansion and phase changes upon ion insertion. Here, we applied a SH strategy, based on the dynamic quadruple hydrogen bonding, to nanosized black phosphorus (BP) anodes for Na-ion cells. The goal is to overcome drastic capacity decay and short lifetime, resulting from mechanical damages induced by the volumetric expansion/contraction upon sodiation/desodiation. Specifically, we developed novel ureidopyrimidinone (UPy)-telechelic systems and related blends with poly(ethylene oxide) as novel and green binders alternative to the more conventional ones, such as polyacrylic acid and carboxymethylcellulose, which are typically used in SIBs. BP anodes show impressively improved (more than 6 times) capacity retention when employing the new SH polymeric blend. In particular, the SH electrode still works at a current density higher than 3.5 A g(–1), whereas the standard BP electrode exhibits very poor performances already at current densities lower than 0.5 A g(–1). This is the result of better adhesion, buffering properties, and spontaneous damage reparation.
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spelling pubmed-80412592021-04-13 Autonomous Self-Healing Strategy for Stable Sodium-Ion Battery: A Case Study of Black Phosphorus Anodes Callegari, D. Colombi, S. Nitti, A. Simari, C. Nicotera, I. Ferrara, C. Mustarelli, P. Pasini, D. Quartarone, E. ACS Appl Mater Interfaces [Image: see text] Autonomic self-healing (SH), namely, the ability to repair damages from mechanical stress spontaneously, is polarizing attention in the field of new-generation electrochemical devices. This property is highly attractive to enhance the durability of rechargeable Li-ion batteries (LIBs) or Na-ion batteries (SIBs), where high-performing anode active materials (silicon, phosphorus, etc.) are strongly affected by volume expansion and phase changes upon ion insertion. Here, we applied a SH strategy, based on the dynamic quadruple hydrogen bonding, to nanosized black phosphorus (BP) anodes for Na-ion cells. The goal is to overcome drastic capacity decay and short lifetime, resulting from mechanical damages induced by the volumetric expansion/contraction upon sodiation/desodiation. Specifically, we developed novel ureidopyrimidinone (UPy)-telechelic systems and related blends with poly(ethylene oxide) as novel and green binders alternative to the more conventional ones, such as polyacrylic acid and carboxymethylcellulose, which are typically used in SIBs. BP anodes show impressively improved (more than 6 times) capacity retention when employing the new SH polymeric blend. In particular, the SH electrode still works at a current density higher than 3.5 A g(–1), whereas the standard BP electrode exhibits very poor performances already at current densities lower than 0.5 A g(–1). This is the result of better adhesion, buffering properties, and spontaneous damage reparation. American Chemical Society 2021-03-15 2021-03-24 /pmc/articles/PMC8041259/ /pubmed/33720685 http://dx.doi.org/10.1021/acsami.0c22464 Text en © 2021 The Authors. Published by American Chemical Society 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 Callegari, D.
Colombi, S.
Nitti, A.
Simari, C.
Nicotera, I.
Ferrara, C.
Mustarelli, P.
Pasini, D.
Quartarone, E.
Autonomous Self-Healing Strategy for Stable Sodium-Ion Battery: A Case Study of Black Phosphorus Anodes
title Autonomous Self-Healing Strategy for Stable Sodium-Ion Battery: A Case Study of Black Phosphorus Anodes
title_full Autonomous Self-Healing Strategy for Stable Sodium-Ion Battery: A Case Study of Black Phosphorus Anodes
title_fullStr Autonomous Self-Healing Strategy for Stable Sodium-Ion Battery: A Case Study of Black Phosphorus Anodes
title_full_unstemmed Autonomous Self-Healing Strategy for Stable Sodium-Ion Battery: A Case Study of Black Phosphorus Anodes
title_short Autonomous Self-Healing Strategy for Stable Sodium-Ion Battery: A Case Study of Black Phosphorus Anodes
title_sort autonomous self-healing strategy for stable sodium-ion battery: a case study of black phosphorus anodes
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8041259/
https://www.ncbi.nlm.nih.gov/pubmed/33720685
http://dx.doi.org/10.1021/acsami.0c22464
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