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通过超分子锚定机制实现可逆锌负极的稳定取向锌沉积

Achieving Stable Orientational Zinc Deposition for Reversible Zinc Anode through Supramolecular Anchoring Mechanism.

作者信息

Lin Xiaoting, Zhang Yufei, Lin Zhenxin, Ding Hanlin, Du Zijian, Ye Minghui, Wen Zhipeng, Tang Yongchao, Liu Xiaoqing, Li Cheng Chao

机构信息

School of Chemical Engineering and Light Industry, Guangdong University of Technology, Guangzhou 510006, China.

Guangdong Provincial Laboratory of Chemistry and Fine Chemical Engineering Jieyang Center, Jieyang 515200, China.

出版信息

ACS Appl Mater Interfaces. 2024 Nov 20;16(46):63668-63680. doi: 10.1021/acsami.4c16069. Epub 2024 Nov 6.

Abstract

Aqueous zinc-ion batteries have been impeded by the hydrogen evolution reaction (HER), uncontrolled zinc dendrites, and side reactions on the Zn anode. In this work, a Zn-polyphenol supramolecular network is rationally designed for stabilizing Zn anodes (ZPN@Zn) even at high current density. Theoretical calculations and experiments show that the zinc-polyphenol supramolecular layer effectively inhibits the hydrogen evolution reaction by capturing water molecules through strong hydrogen bonding networks while also facilitating the rapid replenishment of Zn ions at the interface through supramolecular anchoring. Additionally, it results in preferential deposition of Zn on the (002) plane, thereby contributing to nondendritic and highly reversible Zn plating/stripping behaviors even under high rates. Concomitantly, the ZPN@Zn achieves superior stability of nearly 1200 h at a high current density of 20 mA cm and maintains a high CE efficiency of 99.86% after 3000 cycles at 1 mAh cm and 5 mA cm. Remarkably, the full cell assembled with ZPN@Zn and NaVO (NVO) endures 25 000 cycles at 20 A g, achieving an impressive performance for the realization of dendrite-free Zn anodes by supramolecular modulation.

摘要

水系锌离子电池受到析氢反应(HER)、不受控制的锌枝晶以及锌阳极上的副反应的阻碍。在这项工作中,合理设计了一种锌-多酚超分子网络,用于稳定锌阳极(ZPN@Zn),即使在高电流密度下也能稳定。理论计算和实验表明,锌-多酚超分子层通过强氢键网络捕获水分子,有效抑制析氢反应,同时还通过超分子锚定促进界面处锌离子的快速补充。此外,它导致锌在(002)平面上优先沉积,从而即使在高速率下也有助于实现无枝晶和高度可逆的锌电镀/剥离行为。同时,ZPN@Zn在20 mA cm的高电流密度下实现了近1200 h的卓越稳定性,在1 mAh cm和5 mA cm下经过3000次循环后保持99.86%的高CE效率。值得注意的是,由ZPN@Zn和NaVO(NVO)组装的全电池在20 A g下经受25000次循环,通过超分子调制实现无枝晶锌阳极的性能令人印象深刻。

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