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Published on: November 22, 2021
Breaking Scaling Relations by Bimodal Strain in Mixed-Phase Hybrid Intermetallic Nanocrystals
Qiaoli Chen1, Hui Jin1, Chongzhi Zhu1
1Center for Electron Microscopy, Zhejiang Key Laboratory of Surface and Interface Science and Engineering for Catalysts, China-Saudi Arabia Joint Laboratory on Microscopic Structural Engineering of Advanced Materials, State Key Laboratory of Green Chemical Synthesis and Conversion and College of Chemical Engineering, Zhejiang University of Technology, Hangzhou 310014, P. R. China.
Abstract:
Catalytic performance of heterogeneous catalysis is inherently limited by the linear scaling relations of normalized binding energies among the adsorbed intermediates. Breaking this limitation would create opportunities in the development of high-performance catalysts. To this end, we propose a framework for breaking the scaling relations by evoking bimodal strain over the Pt catalyst in a model structure dictated by Pt-coated Pt3Zn-PtZn mixed-phase hybrid nanocrystals. Such a hybrid heterostructure simultaneously introduces compressive and tensile strain over the Pt shell arising from distinct interfacial interactions between the Pt shell and Pt3Zn/PtZn intermetallic nanodomains. The bimodal strain allows concurrently facilitated consecutive bond cleavage reactions against O-H and C-H groups in formic acid electro-oxidation, which are bridged by fast surface diffusion of formate species across the Pt surface with minimized energy barrier. The mixed-phase hybrid heterostructure outperforms similar Pt-terminated monophase nanocrystals accommodating unimodal strain of either compressive or tensile types and breaks the well-established activity versus strain volcano relationship.
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