Xie Yuhan, Chen Xin, Sun Kaian, Zhang Jinqiang, Lai Wei-Hong, Liu Hao, Wang Guoxiu
Center for Clean Energy Technology, School of Mathematical and Physical Science, Faculty of Science, University of Technology Sydney, Sydney, New South Wales, 2007, Australia.
Beijing Advanced Innovation Center for Materials Genome Engineering, Institute of Solid State Chemistry, University of Science and Technology Beijing, Beijing, 100083, China.
Angew Chem Int Ed Engl. 2023 Apr 17;62(17):e202301833. doi: 10.1002/anie.202301833. Epub 2023 Mar 20.
The oxygen reduction reaction (ORR) on transition single-atom catalysts (SACs) is sustainable in energy-conversion devices. However, the atomically controllable fabrication of single-atom sites and the sluggish kinetics of ORR have remained challenging. Here, we accelerate the kinetics of acid ORR through a direct O-O cleavage pathway through using a bi-functional ligand-assisted strategy to pre-control the distance of hetero-metal atoms. Concretely, the as-synthesized Fe-Zn diatomic pairs on carbon substrates exhibited an outstanding ORR performance with the ultrahigh half-wave potential of 0.86 V vs. RHE in acid electrolyte. Experimental evidence and density functional theory calculations confirmed that the Fe-Zn diatomic pairs with a specific distance range of around 3 Å, which is the key to their ultrahigh activity, average the interaction between hetero-diatomic active sites and oxygen molecules. This work offers new insight into atomically controllable SACs synthesis and addresses the limitations of the ORR dissociative mechanism.
过渡单原子催化剂(SACs)上的氧还原反应(ORR)在能量转换装置中具有可持续性。然而,单原子位点的原子可控制备以及ORR缓慢的动力学仍然具有挑战性。在此,我们通过使用双功能配体辅助策略预先控制杂金属原子的距离,通过直接的O-O裂解途径加速酸性ORR的动力学。具体而言,在碳基底上合成的Fe-Zn双原子对在酸性电解质中表现出出色的ORR性能,相对于可逆氢电极(RHE)的超高半波电位为0.86 V。实验证据和密度泛函理论计算证实,特定距离范围约为3 Å的Fe-Zn双原子对是其超高活性的关键,它使杂双原子活性位点与氧分子之间的相互作用平均化。这项工作为原子可控的SACs合成提供了新的见解,并解决了ORR解离机制的局限性。