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Bidirectional manipulation of iodine redox kinetics in aqueous Fe–I(2) electrochemistry

Catalyzing conversion is a promising approach to unlock the theoretical potentials of the I(2)/I(−) redox couple in aqueous Fe–I(2) electrochemistry. However, most reported results only obtain one-directional efficient iodine conversion and cannot realize a balance of full reduction and reoxidation,...

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Autores principales: Zhang, Weiwei, Wang, Mingli, Zhang, Hong, Fu, Lin, Zhang, Wenli, Yuan, Yupeng, Lu, Ke
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10646974/
https://www.ncbi.nlm.nih.gov/pubmed/38020388
http://dx.doi.org/10.1039/d3sc04853e
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author Zhang, Weiwei
Wang, Mingli
Zhang, Hong
Fu, Lin
Zhang, Wenli
Yuan, Yupeng
Lu, Ke
author_facet Zhang, Weiwei
Wang, Mingli
Zhang, Hong
Fu, Lin
Zhang, Wenli
Yuan, Yupeng
Lu, Ke
author_sort Zhang, Weiwei
collection PubMed
description Catalyzing conversion is a promising approach to unlock the theoretical potentials of the I(2)/I(−) redox couple in aqueous Fe–I(2) electrochemistry. However, most reported results only obtain one-directional efficient iodine conversion and cannot realize a balance of full reduction and reoxidation, thereby resulting in rapid capacity decay and/or low coulombic efficiency. Herein, the concept of bidirectional catalysis based on a core–shell structured composite cathode design, which accelerates the formation and the decomposition of FeI(2) simultaneously during battery dynamic cycling, is proposed to regulate the Fe–I(2) electrochemical reactions. Notably, the functional matrix integrates N, P co-doping and FeP nanocrystals into a carbon shell to achieve bidirectional catalysis. More specifically, the carbon shell acts as a physical barrier to effectively capture active species within its confined environment, N, P heteroatoms function better in directing the iodine reduction and FeP facilitates the decomposition of FeI(2). As confirmed with in situ and ex situ analysis, the Fe–I(2) cell operates a one-step but reversible I(2)/FeI(2) pair with enhanced kinetics. Consequently, the composite cathode exhibits a reversible Fe(2+) storage capability of 202 mA h g(−1) with a capacity fading rate of 0.016% per cycle over 500 cycles. Further, a stable pouch cell was fabricated and yielded an energy density of 146 W h kg(iodine)(−1). Moreover, postmortem analysis reveals that the capacity decay of the Fe–I(2) cell originates from anodic degradation rather than the accumulation of inactive iodine. This study represents a promising direction to manipulate iodine redox in rechargeable metal–iodine batteries.
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spelling pubmed-106469742023-10-20 Bidirectional manipulation of iodine redox kinetics in aqueous Fe–I(2) electrochemistry Zhang, Weiwei Wang, Mingli Zhang, Hong Fu, Lin Zhang, Wenli Yuan, Yupeng Lu, Ke Chem Sci Chemistry Catalyzing conversion is a promising approach to unlock the theoretical potentials of the I(2)/I(−) redox couple in aqueous Fe–I(2) electrochemistry. However, most reported results only obtain one-directional efficient iodine conversion and cannot realize a balance of full reduction and reoxidation, thereby resulting in rapid capacity decay and/or low coulombic efficiency. Herein, the concept of bidirectional catalysis based on a core–shell structured composite cathode design, which accelerates the formation and the decomposition of FeI(2) simultaneously during battery dynamic cycling, is proposed to regulate the Fe–I(2) electrochemical reactions. Notably, the functional matrix integrates N, P co-doping and FeP nanocrystals into a carbon shell to achieve bidirectional catalysis. More specifically, the carbon shell acts as a physical barrier to effectively capture active species within its confined environment, N, P heteroatoms function better in directing the iodine reduction and FeP facilitates the decomposition of FeI(2). As confirmed with in situ and ex situ analysis, the Fe–I(2) cell operates a one-step but reversible I(2)/FeI(2) pair with enhanced kinetics. Consequently, the composite cathode exhibits a reversible Fe(2+) storage capability of 202 mA h g(−1) with a capacity fading rate of 0.016% per cycle over 500 cycles. Further, a stable pouch cell was fabricated and yielded an energy density of 146 W h kg(iodine)(−1). Moreover, postmortem analysis reveals that the capacity decay of the Fe–I(2) cell originates from anodic degradation rather than the accumulation of inactive iodine. This study represents a promising direction to manipulate iodine redox in rechargeable metal–iodine batteries. The Royal Society of Chemistry 2023-10-20 /pmc/articles/PMC10646974/ /pubmed/38020388 http://dx.doi.org/10.1039/d3sc04853e Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Zhang, Weiwei
Wang, Mingli
Zhang, Hong
Fu, Lin
Zhang, Wenli
Yuan, Yupeng
Lu, Ke
Bidirectional manipulation of iodine redox kinetics in aqueous Fe–I(2) electrochemistry
title Bidirectional manipulation of iodine redox kinetics in aqueous Fe–I(2) electrochemistry
title_full Bidirectional manipulation of iodine redox kinetics in aqueous Fe–I(2) electrochemistry
title_fullStr Bidirectional manipulation of iodine redox kinetics in aqueous Fe–I(2) electrochemistry
title_full_unstemmed Bidirectional manipulation of iodine redox kinetics in aqueous Fe–I(2) electrochemistry
title_short Bidirectional manipulation of iodine redox kinetics in aqueous Fe–I(2) electrochemistry
title_sort bidirectional manipulation of iodine redox kinetics in aqueous fe–i(2) electrochemistry
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10646974/
https://www.ncbi.nlm.nih.gov/pubmed/38020388
http://dx.doi.org/10.1039/d3sc04853e
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