Macrocycle-based covalent-organic-polymer as efficient oxygen electrocatalysts for zinc-air flow batteries

Yiming Leng, Tengge Chen, Yuanyuan Yin, Jizhen Li, Xueli Li, Zhonghua Xiang
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Abstract

Covalent organic polymers (COPs), as emerging porous materials with well-defined architectures and high hydrothermal stability, have attracted extensive attention in the field of electrocatalysis. Herein, we report a rational design method for preparing oxygen reduction reaction electrocatalysts with the assistance of a predesigned macrocyclic COP model molecular. With the predesigned nitrogen position and structural features in macrocyclic chain-like COP-based materials, the obtained COPMCT-Co-900 catalyst provided excellent oxygen reduction performance, where the half-wave potential (E1/2) reaches 0.85 V (vs . RHE), comparable to commercial Pt/C. We also extended the strategy to similar macrocycle COPs and Fe-based and Ni-based metal sources and studied the oxygen reduction reaction performance of corresponding catalysts, proving the universality of the method. Interestingly, we assemble COPMCT-Co-900 catalyst as air electrode catalyst of the self-made rechargeable zinc-air flow batteries, which exhibit outstanding power density (155.6 mW·cm-2) and long cycle life (90 h, 270 cycles at 10 mA·cm-2). Our studies provide a new method for the development of high-performance oxygen electrodes applied in zinc-air flow battery devices.
基于大环的共价有机聚合物作为锌-空气液流电池的高效氧气电催化剂
共价有机聚合物(COPs)作为新兴的多孔材料,具有明确的结构和较高的水热稳定性,在电催化领域引起了广泛关注。在此,我们报告了一种借助预先设计的大环 COP 模型分子制备氧还原反应电催化剂的合理设计方法。由于预先设计了基于大环链状 COP 材料中氮的位置和结构特征,所获得的 COPMCT-Co-900 催化剂具有优异的氧还原性能,其半波电位(E1/2)达到 0.85 V(vs .RHE),与商用 Pt/C 相媲美。我们还将该策略扩展到类似的大环 COP 以及铁基和镍基金属源,并研究了相应催化剂的氧还原反应性能,证明了该方法的通用性。有趣的是,我们将 COPMCT-Co-900 催化剂组装成了自制可充电锌-空气液流电池的空气电极催化剂,该电池具有出色的功率密度(155.6 mW-cm-2)和长循环寿命(90 h,10 mA-cm-2 下循环 270 次)。我们的研究为开发应用于锌-空气液流电池装置的高性能氧电极提供了一种新方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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CiteScore
3.40
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