Ji Jiapeng, Wu Lei, Zhou Shiyu, Qiu Tong, Li Zeheng, Wang Liguang, Zhang Liang, Ma Lu, Ling Min, Zhou Shaodong, Liang Chengdu
Zhejiang Provincial Key Laboratory of Advanced Chemical Engineering Manufacture Technology, College of Chemical and Biological Engineering, Zhejiang University, Hangzhou, 310027, China.
Institute of Zhejiang University-Quzhou, Quzhou, 324000, China.
Small Methods. 2022 Apr;6(4):e2101511. doi: 10.1002/smtd.202101511. Epub 2022 Feb 17.
Electronic structure of single-atom catalysts (SACs) is critical for bifunctional oxygen electrocatalysis by adjusting the binding energy in oxygen-containing intermediates. However, the regulation of electronic structure has always been a challenge to improve catalytic reactivity. Herein, by introducing a heterogenous metal, the electronic structure through a direct bonding interaction to the active center atom is effectively adjusted. Partial charge transfer between the two atoms optimizes the binding energy of intermediates and reducing the energy barrier of the catalytic reaction. Theoretical calculations confirm these effects and the uniform distribution of 3d orbitals, leading to the improvement of bifunctional oxygen electrocatalytic reactivity. Benefiting from these attributes, the as-constructed bifunctional catalyst enables outstanding electrocatalytic performances in both oxygen reduction and hydrogen oxidation in various energy storage systems. The generality and expandability of this strategy is demonstrated by further successful development of other dual-metal catalysts systems with various active metals.
单原子催化剂(SACs)的电子结构对于双功能氧电催化至关重要,它通过调节含氧化合物中间体的结合能来实现。然而,电子结构的调控一直是提高催化反应活性的一大挑战。在此,通过引入一种异质金属,与活性中心原子的直接键合相互作用有效地调节了电子结构。两个原子之间的部分电荷转移优化了中间体的结合能,并降低了催化反应的能垒。理论计算证实了这些效应以及3d轨道的均匀分布,从而提高了双功能氧电催化反应活性。受益于这些特性,所构建的双功能催化剂在各种储能系统中的氧还原和氢氧化反应中均表现出出色的电催化性能。通过进一步成功开发具有各种活性金属的其他双金属催化剂体系,证明了该策略的通用性和可扩展性。