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用于高效全pH值氧还原反应的铜单原子催化剂的不对称配位策略

Asymmetric Coordination Strategy of Cu Single-Atom Catalyst for Robust all-pH Oxygen Reduction Reaction.

作者信息

Liu Le, Chen Feng, Yang Haowei, Yan Xiaoli, Ren Jie, Song Yanhui, Guo Junjie

机构信息

Key Laboratory of Interface Science and Engineering in Advanced Materials, Ministry of Education, College of Materials Science and Engineering, Taiyuan University of Technology, Taiyuan, 030024, China.

Instrumental Analysis Center, Taiyuan University of Technology, Taiyuan, 030024, China.

出版信息

Small. 2025 Aug;21(32):e2503745. doi: 10.1002/smll.202503745. Epub 2025 Jun 13.

DOI:10.1002/smll.202503745
PMID:40511685
Abstract

Although Cu-N-C single-atom catalysts (SACs) is proven to be a potential substitute for oxygen reduction reaction (ORR), the rigid coordination structure of Cu-N active sites hampers mass transfer and electron transport during the ORR process, limiting their catalytic activity. In this study, an asymmetric coordination strategy (Cu-N-C/Cl) is implemented by doping chlorine, which subtly modulates the electronic structure of the Cu-N coordination environment in two dimensions. The Cu-N-C/Cl electrocatalysts with the optimized electronic structure exhibit outstanding ORR activity across all pH ranges with the half-wave potentials of 0.915, 0.74, and 0.67 V (vs. RHE) in alkaline, acidic, and neutral electrolytes, respectively. Experimental and theoretical findings demonstrate that the incorporation of Cl is crucial for enhancing ORR performance. This modification efficiently disrupts the electron symmetry of Cu-N, resulting in a positive shift in the d-band center of Cu and optimizing the adsorption/desorption of ORR intermediates. Notably, the Cu-N-C/Cl electrocatalyst also shows promising performance in a Zn-air battery (ZAB), achieving a peak power density of 286 mW cm and a specific capacity of 797.2 mAh g. Moreover, this novel catalyst displays exceptional long-term stability, maintaining continuous operation for over 600 h, highlighting its significant potential for practical applications.

摘要

尽管铜氮碳单原子催化剂(SACs)已被证明是氧还原反应(ORR)的潜在替代物,但铜氮活性位点的刚性配位结构在ORR过程中阻碍了传质和电子传输,限制了它们的催化活性。在本研究中,通过掺杂氯实施了一种不对称配位策略(Cu-N-C/Cl),该策略在二维空间中巧妙地调节了铜氮配位环境的电子结构。具有优化电子结构的Cu-N-C/Cl电催化剂在所有pH范围内均表现出出色的ORR活性,在碱性、酸性和中性电解质中的半波电位分别为0.915、0.74和0.67 V(相对于可逆氢电极)。实验和理论结果表明,Cl的掺入对于提高ORR性能至关重要。这种修饰有效地破坏了Cu-N的电子对称性,导致Cu的d带中心正向移动,并优化了ORR中间体的吸附/解吸。值得注意的是,Cu-N-C/Cl电催化剂在锌空气电池(ZAB)中也表现出良好的性能,实现了286 mW cm的峰值功率密度和797.2 mAh g的比容量。此外,这种新型催化剂具有出色的长期稳定性,能够连续运行超过600小时,突出了其在实际应用中的巨大潜力。

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