Cai Jingjing, Zhang Huijian, Zhang Lizhu, Xiong Yuqing, Ouyang Ting, Liu Zhao-Qing
School of Chemistry and Chemical Engineering/Institute of Clean Energy and Materials/Key Laboratory for Clean Energy and Materials/Key Laboratory for Water Quality and Conservation of the Pearl River Delta, Ministry of Education, Guangzhou University, Guangzhou Higher Education Mega Center No. 230 Wai Huan Xi Road, Guangzhou, 510006, P. R. China.
Adv Mater. 2023 Sep;35(36):e2303488. doi: 10.1002/adma.202303488. Epub 2023 Jul 18.
The electronic structure of transition metal complexes can be modulated by replacing partial ion of complexes to obtain tuned intrinsic oxygen reduction reaction (ORR) or oxygen evolution reaction (OER) electrocatalytic activity. However, the anion-modulated transition metal complexes ORR activity of is still unsatisfactory, and the construction of hetero-anionic structure remains challenging. Herein, an atomic doping strategy is presented to prepare the CuCo O S /NC-2 (CCSO/NC-2) as electrocatalysts, the structrual characterization results favorably demonstrate the partial substitution of S atoms for O in CCSO/NC-2, which shows excellent catalytic performance and durability for OER and ORR in 0.1 m KOH. In addition, the catalyst assembled Zinc-air battery with an open circuit potential of 1.43 V maintains performance after 300 h of cyclic stability. Theoretical calculations and differential charges illustrate that S doping optimizes the reaction kinetics and promotes electron redistribution. The superior performance of CCSO/NC-2 catalysis is mainly due to its unique S modulation of the electronic structure of the main body. The introduction of S promotes CoO covalency and constructs a fast electron transport channel, thus optimizing the adsorption degree of active site Co to the reaction intermediates.
通过替换配合物的部分离子来调节过渡金属配合物的电子结构,可获得经过调谐的本征氧还原反应(ORR)或析氧反应(OER)电催化活性。然而,阴离子调制的过渡金属配合物的ORR活性仍不尽人意,构建杂阴离子结构仍然具有挑战性。在此,提出一种原子掺杂策略来制备CuCoOS/NC-2(CCSO/NC-2)作为电催化剂,结构表征结果有力地证明了CCSO/NC-2中S原子对O的部分取代,其在0.1 m KOH中对OER和ORR表现出优异的催化性能和耐久性。此外,组装的锌空气电池催化剂在开路电位为1.43 V的情况下,经过300 h循环稳定性测试后仍保持性能。理论计算和差分电荷表明,S掺杂优化了反应动力学并促进了电子重新分布。CCSO/NC-2催化性能优异主要归因于其独特的S对主体电子结构的调制。S的引入促进了CoO共价性并构建了快速电子传输通道,从而优化了活性位点Co对反应中间体的吸附程度。