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Simultaneous Manipulation of Anions and Water Molecules by Lewis Acid–Base for Highly Stable Zn Anodes
Author(s) -
Wang Rui,
Zhu Jiacai,
Yang Min,
Niu Zhiqiang
Publication year - 2025
Publication title -
angewandte chemie international edition
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 5.831
H-Index - 550
eISSN - 1521-3773
pISSN - 1433-7851
DOI - 10.1002/anie.202501327
Subject(s) - lewis acids and bases , fumed silica , electrolyte , anode , molecule , inorganic chemistry , base (topology) , chemistry , aqueous solution , zinc , ion , electrochemistry , materials science , catalysis , organic chemistry , electrode , mathematical analysis , mathematics
Abstract In aqueous zinc‐ion batteries (ZIBs), Zn anodes often suffer from Zn dendrite and hydrogen evolution reaction (HER) in traditional electrolytes. Herein, fumed silica with both Lewis acid–base functional groups were introduced into traditional electrolytes. Owing to the strong Lewis acid–base interactions between Si─O─Si functional groups and SO 4 2− ions, the Zn 2+ ion transference number is significantly increased in electrolyte, and thus more Zn 2+ ions reach the Zn anode surface. As a result, the distribution of Zn 2+ ions will be more homogeneous and dendrites growth will be suppressed on the Zn anode surface. In addition, Si─OH functional groups on fumed silica can also constrain the free and solvated H 2 O molecules in electrolyte simultaneously through Lewis acid–base interactions between electronegative O atoms in Si─OH functional groups and electropositive H atoms in H 2 O molecules, ensuring that the HER is inhibited on Zn anodes. Therefore, in the fumed silica‐contained electrolyte, the Zn anodes exhibit a high reversibility and Zn||MnO 2 full batteries demonstrate a superior cycling performance.
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