Ionic Selective Separator Design Enables Long‐Life Zinc–Iodine Batteries via Synergistic Anode Stabilization and Polyiodide Shuttle Suppression

Aqueous zinc–iodine batteries show immense potential in the electrochemical energy storage field due to their intrinsic safety and cost‐effectiveness. However, the rampant dendritic growth and continuous side reactions on the zinc anode, coupled with the shuttling phenomenon of polyiodides, severely...

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Veröffentlicht in:Advanced functional materials 2024-12, Vol.34 (52), p.n/a
Hauptverfasser: Yang, Peng, Zhang, Kai, Liu, Shizhuo, Zhuang, Wubin, Shao, Zhipeng, Zhu, Kaiping, Lin, Lin, Guo, Gengde, Wang, Wenhui, Zhang, Qichong, Yao, Yagang
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container_issue 52
container_start_page
container_title Advanced functional materials
container_volume 34
creator Yang, Peng
Zhang, Kai
Liu, Shizhuo
Zhuang, Wubin
Shao, Zhipeng
Zhu, Kaiping
Lin, Lin
Guo, Gengde
Wang, Wenhui
Zhang, Qichong
Yao, Yagang
description Aqueous zinc–iodine batteries show immense potential in the electrochemical energy storage field due to their intrinsic safety and cost‐effectiveness. However, the rampant dendritic growth and continuous side reactions on the zinc anode, coupled with the shuttling phenomenon of polyiodides, severely affect their cyclic life. In response, this study utilizes a carboxyl‐functionalized metal‐organic framework UiO‐66‐(COOH)2 (UC) to modify commercial glass fiber (GF) to develop a novel ionic selective separator (UC/GF). This separator exhibits cation exchange ability for Zn2+ and polyiodides, thereby simultaneously stabilizing the zinc anode and inhibiting the shuttle effect of polyiodides. Enhanced by the abundant polar carboxyl groups, the UC/GF separator can effectively facilitate Zn2+ ion transport and accelerate the desolvation of hydrated zinc ions by its zincophilicity and hydrophilicity, while significantly hindering the transfer of polyiodides via electrostatic repulsion. Consequently, the Zn|UC/GF|Zn symmetric battery enables a long lifespan of over 3400 h at a current density of 5.0 mA cm−2, while the Zn|UC/GF|I2 exhibits an exceptional discharge capacity of 103.8 mAh g−1 after 35 000 cycles at 10 C with a capacity decay rate of only 0.0013% per cycle. This separator modification strategy that synergistically optimizes anode and cathode performance provides unique insights into the commercialization of zinc–iodine batteries. An ionic selective separator is prepared to achieve long‐lifespan zinc–iodine batteries. This separator can stabilize the zinc anode and suppress the shuttle effect of polyiodides simultaneously. Consequently, the symmetric battery enables a long lifespan of over 3400 h, while the full battery exhibits remarkable cycle stability of over 35 000 cycles.
doi_str_mv 10.1002/adfm.202410712
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However, the rampant dendritic growth and continuous side reactions on the zinc anode, coupled with the shuttling phenomenon of polyiodides, severely affect their cyclic life. In response, this study utilizes a carboxyl‐functionalized metal‐organic framework UiO‐66‐(COOH)2 (UC) to modify commercial glass fiber (GF) to develop a novel ionic selective separator (UC/GF). This separator exhibits cation exchange ability for Zn2+ and polyiodides, thereby simultaneously stabilizing the zinc anode and inhibiting the shuttle effect of polyiodides. Enhanced by the abundant polar carboxyl groups, the UC/GF separator can effectively facilitate Zn2+ ion transport and accelerate the desolvation of hydrated zinc ions by its zincophilicity and hydrophilicity, while significantly hindering the transfer of polyiodides via electrostatic repulsion. Consequently, the Zn|UC/GF|Zn symmetric battery enables a long lifespan of over 3400 h at a current density of 5.0 mA cm−2, while the Zn|UC/GF|I2 exhibits an exceptional discharge capacity of 103.8 mAh g−1 after 35 000 cycles at 10 C with a capacity decay rate of only 0.0013% per cycle. This separator modification strategy that synergistically optimizes anode and cathode performance provides unique insights into the commercialization of zinc–iodine batteries. An ionic selective separator is prepared to achieve long‐lifespan zinc–iodine batteries. This separator can stabilize the zinc anode and suppress the shuttle effect of polyiodides simultaneously. 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Consequently, the symmetric battery enables a long lifespan of over 3400 h, while the full battery exhibits remarkable cycle stability of over 35 000 cycles.</description><subject>aqueous zinc–iodine batteries</subject><subject>Cation exchanging</subject><subject>Chemical reactions</subject><subject>Commercialization</subject><subject>Decay rate</subject><subject>Glass fibers</subject><subject>Iodine</subject><subject>Ion transport</subject><subject>ionic selective separator</subject><subject>long‐term cycle performance</subject><subject>polyiodide shuttle effect</subject><subject>Separators</subject><subject>Stabilization</subject><subject>Zinc</subject><subject>Zn anode</subject><issn>1616-301X</issn><issn>1616-3028</issn><fulltext>true</fulltext><rsrctype>article</rsrctype><creationdate>2024</creationdate><recordtype>article</recordtype><recordid>eNqFkMtKAzEUhgdR8Lp1HXA9NZdJZ7qstlWhoqCCuBkyk5MamSZjklHqykcQfMM-iSmVunR1DuT7_nD-JDkmuEcwpqdCqnmPYpoRnBO6leyRPumnDNNie7OTx91k3_sXjEmes2wv-b6yRtfoDhqog36DuLXCiWAdGoHXM4PGRlQNeDS1Zrb8_JpqBehJm3r5GV2pDaAzEQI4HZk3LdDdwoCbaR9i7NBYGSODqHSjP0TQ1iBhJLq1zUJHefX43IXQxNm1rQPvI3KY7CjReDj6nQfJw2R8f36ZTm8urs6H07SOV9JU5UpJXjAuc87yDCsqSFGB5LimDEjBOckHSjGZVbLijPJKyqymFQFKORGSHSQn69zW2dcOfChfbOdM_LJkJCv6BSswjlRvTdXOeu9Ala3Tc-EWJcHlqvhyVXy5KT4Kg7XwrhtY_EOXw9Hk-s_9AQJcjAI</recordid><startdate>20241201</startdate><enddate>20241201</enddate><creator>Yang, Peng</creator><creator>Zhang, Kai</creator><creator>Liu, Shizhuo</creator><creator>Zhuang, Wubin</creator><creator>Shao, Zhipeng</creator><creator>Zhu, Kaiping</creator><creator>Lin, Lin</creator><creator>Guo, Gengde</creator><creator>Wang, Wenhui</creator><creator>Zhang, Qichong</creator><creator>Yao, Yagang</creator><general>Wiley Subscription Services, Inc</general><scope>AAYXX</scope><scope>CITATION</scope><scope>7SP</scope><scope>7SR</scope><scope>7U5</scope><scope>8BQ</scope><scope>8FD</scope><scope>JG9</scope><scope>L7M</scope><orcidid>https://orcid.org/0000-0002-4381-2952</orcidid></search><sort><creationdate>20241201</creationdate><title>Ionic Selective Separator Design Enables Long‐Life Zinc–Iodine Batteries via Synergistic Anode Stabilization and Polyiodide Shuttle Suppression</title><author>Yang, Peng ; 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However, the rampant dendritic growth and continuous side reactions on the zinc anode, coupled with the shuttling phenomenon of polyiodides, severely affect their cyclic life. In response, this study utilizes a carboxyl‐functionalized metal‐organic framework UiO‐66‐(COOH)2 (UC) to modify commercial glass fiber (GF) to develop a novel ionic selective separator (UC/GF). This separator exhibits cation exchange ability for Zn2+ and polyiodides, thereby simultaneously stabilizing the zinc anode and inhibiting the shuttle effect of polyiodides. Enhanced by the abundant polar carboxyl groups, the UC/GF separator can effectively facilitate Zn2+ ion transport and accelerate the desolvation of hydrated zinc ions by its zincophilicity and hydrophilicity, while significantly hindering the transfer of polyiodides via electrostatic repulsion. Consequently, the Zn|UC/GF|Zn symmetric battery enables a long lifespan of over 3400 h at a current density of 5.0 mA cm−2, while the Zn|UC/GF|I2 exhibits an exceptional discharge capacity of 103.8 mAh g−1 after 35 000 cycles at 10 C with a capacity decay rate of only 0.0013% per cycle. This separator modification strategy that synergistically optimizes anode and cathode performance provides unique insights into the commercialization of zinc–iodine batteries. An ionic selective separator is prepared to achieve long‐lifespan zinc–iodine batteries. This separator can stabilize the zinc anode and suppress the shuttle effect of polyiodides simultaneously. Consequently, the symmetric battery enables a long lifespan of over 3400 h, while the full battery exhibits remarkable cycle stability of over 35 000 cycles.</abstract><cop>Hoboken</cop><pub>Wiley Subscription Services, Inc</pub><doi>10.1002/adfm.202410712</doi><tpages>10</tpages><orcidid>https://orcid.org/0000-0002-4381-2952</orcidid></addata></record>
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subjects aqueous zinc–iodine batteries
Cation exchanging
Chemical reactions
Commercialization
Decay rate
Glass fibers
Iodine
Ion transport
ionic selective separator
long‐term cycle performance
polyiodide shuttle effect
Separators
Stabilization
Zinc
Zn anode
title Ionic Selective Separator Design Enables Long‐Life Zinc–Iodine Batteries via Synergistic Anode Stabilization and Polyiodide Shuttle Suppression
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