Peng Haoyu, Wang Weiyi, Gao Jiyuan, Jiang Fan, Li Bowei, Wang Yicheng, Wu Yiqian, Wang Yue, Li Jiuqiang, Peng Jing, Hu Wei, Wen Zhenhai, Wang Dingsheng, Zhang Erhuan, Zhai Maolin
Beijing National Laboratory for Molecular Sciences, Radiochemistry and Radiation Chemistry Key Laboratory of Fundamental Science, The Key Laboratory of Polymer Chemistry and Physics of the Ministry of Education, College of Chemistry and Molecular Engineering, Peking University, Beijing, 100871, P. R. China.
Hefei National Research Center for Physical Sciences at the Microscale, Department of Chemical Physics, University of Science and Technology of China, Hefei, 230026, P. R. China.
Adv Sci (Weinh). 2025 Feb;12(6):e2411928. doi: 10.1002/advs.202411928. Epub 2024 Dec 16.
Oxygen reduction reaction (ORR) kinetics is critically dependent on the precise modulation of the interactions between the key oxygen intermediates and catalytic active sites. Herein, a novel electrocatalyst is reported, featuring nitrogen-doped carbon-supported ultra-small copper oxide nanoparticles with the broken-symmetry C coordination filed sites, achieved by a mild γ-ray radiation-induced method. The as-synthesized catalyst exhibits an excellent ORR activity with a half-wave potential of 0.873 V and shows no obvious decay over 50 h durability in alkaline solution. This superior catalytic activity is further corroborated by the high-performance in both primary and rechargeable Zn-air batteries with an ultrahigh-peak-power density (255.4 mW cm) and robust cycling stability. The experimental characterizations and density functional theory calculations show that the surface Cu atoms are configured in a compressed octahedron coordination. This geometric arrangement interacts with the key intermediate OH, facilitating localized charge transfer and thereby weakening the Cu─O bond, which promotes the efficient transformation of OH to OH and the subsequent desorption, and markedly accelerates kinetics of the rate-determining step in the reaction. This study provides new insights for developing the utilization of γ-ray radiation chemistry to construct high-performance metal oxide-based catalysts with broken symmetry toward ORR.
氧还原反应(ORR)动力学严重依赖于关键氧中间体与催化活性位点之间相互作用的精确调控。在此,报道了一种新型电催化剂,其具有通过温和的γ射线辐射诱导法制备的、具有破对称C配位场位点的氮掺杂碳负载超小氧化铜纳米颗粒。所合成的催化剂表现出优异的ORR活性,半波电位为0.873 V,并且在碱性溶液中50小时的耐久性测试中没有明显衰减。在具有超高峰值功率密度(255.4 mW cm)和强大循环稳定性的一次和可充电锌空气电池中的高性能进一步证实了这种优异的催化活性。实验表征和密度泛函理论计算表明,表面Cu原子以压缩八面体配位形式存在。这种几何排列与关键中间体OH相互作用,促进局部电荷转移,从而削弱Cu─O键,促进OH向OH的有效转化以及随后的解吸,并显著加速反应中速率决定步骤的动力学。该研究为利用γ射线辐射化学开发具有破对称性质的高性能金属氧化物基ORR催化剂提供了新的见解。