Hao Jiace, Zhuang Zechao, Cao Kecheng, Gao Guohua, Wang Chan, Lai Feili, Lu Shuanglong, Ma Piming, Dong Weifu, Liu Tianxi, Du Mingliang, Zhu Han
Key Laboratory of Synthetic and Biological Colloids, Ministry of Education, School of Chemical and Material Engineering, Jiangnan University, Wuxi, 214122, China.
Department of Chemistry, Tsinghua University, Beijing, 100084, China.
Nat Commun. 2022 May 13;13(1):2662. doi: 10.1038/s41467-022-30379-4.
High-entropy alloys have received considerable attention in the field of catalysis due to their exceptional properties. However, few studies hitherto focus on the origin of their outstanding performance and the accurate identification of active centers. Herein, we report a conceptual and experimental approach to overcome the limitations of single-element catalysts by designing a FeCoNiXRu (X: Cu, Cr, and Mn) High-entropy alloys system with various active sites that have different adsorption capacities for multiple intermediates. The electronegativity differences between mixed elements in HEA induce significant charge redistribution and create highly active Co and Ru sites with optimized energy barriers for simultaneously stabilizing OH and H intermediates, which greatly enhances the efficiency of water dissociation in alkaline conditions. This work provides an in-depth understanding of the interactions between specific active sites and intermediates, which opens up a fascinating direction for breaking scaling relation issues for multistep reactions.
高熵合金因其优异的性能在催化领域受到了广泛关注。然而,迄今为止,很少有研究关注其卓越性能的起源以及活性中心的准确识别。在此,我们报告了一种概念性和实验性方法,通过设计具有对多种中间体具有不同吸附能力的各种活性位点的FeCoNiXRu(X:Cu、Cr和Mn)高熵合金体系,克服单元素催化剂的局限性。高熵合金中混合元素之间的电负性差异会引起显著的电荷重新分布,并产生具有优化能垒的高活性Co和Ru位点,用于同时稳定OH和H中间体,这极大地提高了碱性条件下的水离解效率。这项工作深入了解了特定活性位点与中间体之间的相互作用,为解决多步反应的比例关系问题开辟了一个引人入胜的方向。