Molecular Engineering of Covalent Organic Framework Cathodes for Enhanced Zinc‐Ion Batteries

Wenxi Wang(King Abdullah University of Science and Technology), Vinayak S. Kale(King Abdullah University of Science and Technology), Zhen Cao(King Abdullah University of Science and Technology), Yougjiu Lei(King Abdullah University of Science and Technology), Sharath Kandambeth(King Abdullah University of Science and Technology), Guo‐Dong Zou(King Abdullah University of Science and Technology), Yunpei Zhu(King Abdullah University of Science and Technology), Edy Abou‐Hamad(King Abdullah University of Science and Technology), Osama Shekhah(King Abdullah University of Science and Technology), Luigi Cavallo(King Abdullah University of Science and Technology), Mohamed Eddaoudi(King Abdullah University of Science and Technology), Husam N. Alshareef(King Abdullah University of Science and Technology)
Advanced Materials
August 8, 2021
Cited by 315

Abstract

Abstract Covalent organic frameworks (COFs) are potentially promising electrode materials for electrochemical charge storage applications thanks to their pre‐designable reticular chemistry with atomic precision, allowing precise control of pore size, redox‐active functional moieties, and stable covalent frameworks. However, studies on the mechanistic and practical aspects of their zinc‐ion storage behavior are still limited. In this study, a strategy to enhance the electrochemical performance of COF cathodes in zinc‐ion batteries (ZIBs) by introducing the quinone group into 1,4,5,8,9,12‐hexaazatriphenylene‐based COFs is reported. Electrochemical characterization demonstrates that the introduction of the quinone groups in the COF significantly pushes up the Zn 2+ storage capability against H + and elevates the average (dis‐)charge potential in aqueous ZIBs. Computational and experimental analysis further reveals the favorable redox‐active sites that host Zn 2+ /H + in COF electrodes and the root cause for the enhanced electrochemical performance. This work demonstrates that molecular engineering of the COF structure is an effective approach to achieve practical charge storage performance.


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