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协同双金属 CoCu 修饰的碳纳米片阵列作为高性能可充电/柔性锌空气电池的集成双功能阴极。

Synergistic Bimetallic CoCu-Codecorated Carbon Nanosheet Arrays as Integrated Bifunctional Cathodes for High-Performance Rechargeable/Flexible Zinc-Air Batteries.

机构信息

Key Laboratory for Biobased Materials and Energy of Ministry of Education, Guangdong Laboratory for Lingnan Modern Agriculture, College of Materials and Energy, South China Agricultural University, Guangzhou, 510642, China.

出版信息

Small. 2023 Apr;19(17):e2207413. doi: 10.1002/smll.202207413. Epub 2023 Jan 31.

Abstract

The unremitting exploration of well-architectured and high-efficiency oxygen electrocatalysts is promising to speed up the surface-mediated oxygen reduction/evolution reaction (ORR/OER) kinetics of rechargeable zinc-air batteries (ZABs). Herein, bimetallic CoCu-codecorated carbon nanosheet arrays (CoCu/N-CNS) are proposed as self-supported bifunctional oxygen catalysts. The integrated catalysts are in situ constructed via a simple sacrificial-templated strategy, imparting CoCu/N-CNS with 3D interconnected conductive pathways, abundant mesopores for electrolyte penetration and ion diffusion, as well as Cu-synergized Co-N /O reactive sites for improved catalytic activities. By incorporating a moderate amount of Cu into CoCu/N-CNS, the bifunctional activities can be further increased due to synergistic oxygen electrocatalysis. Consequently, the optimized CoCu/N-CNS realizes a low overall overpotential of 0.64 V for OER and ORR and leads to high-performance liquid ZABs with high gravimetric energy (879.7 Wh kg ), high peak power density (104.3 mW cm ), and remarkable cyclic stability upon 400 h/1000 cycles at 10 mA cm . More impressively, all-solid-state flexible ZABs assembled with the CoCu/N-CNS cathode exhibit superior rate performance and exceptional mechanical flexibility under arbitrary bending conditions. This CoCu/N-CNS monolith holds significant potential in advancing cation-modulated multimetallic electrocatalysts and multifunctional nanocatalysts.

摘要

构建合理、高效的氧电催化剂的不懈探索有望加快可充电锌空气电池(ZAB)的表面介导氧还原/析氧反应(ORR/OER)动力学。在此,提出了双金属 CoCu 共修饰的碳纳米片阵列(CoCu/N-CNS)作为自支撑双功能氧催化剂。通过简单的牺牲模板策略原位构建集成催化剂,赋予 CoCu/N-CNS 三维互连的导电途径、丰富的用于电解质渗透和离子扩散的中孔,以及 Cu 协同的 Co-N/O 反应性位点,以提高催化活性。通过将适量的 Cu 掺入 CoCu/N-CNS 中,由于协同氧电催化作用,双功能活性可以进一步提高。因此,优化后的 CoCu/N-CNS 实现了 OER 和 ORR 的低总过电位为 0.64 V,并导致具有高重量能量(879.7 Wh kg)、高峰值功率密度(104.3 mW cm)和在 10 mA cm下经过 400 小时/1000 次循环后具有出色循环稳定性的高性能液态 ZAB。更令人印象深刻的是,组装有 CoCu/N-CNS 阴极的全固态柔性 ZAB 在任意弯曲条件下表现出优异的倍率性能和出色的机械灵活性。这种 CoCu/N-CNS 整体具有在推进阳离子调制多金属电催化剂和多功能纳米催化剂方面的巨大潜力。

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