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Multiscale Sampling of a Heterogeneous Water/Metal Catalyst Interface using Density Functional Theory and Force-Field Molecular Dynamics
Published on: April 12, 2019
Distance-aware framework on molecular engineering of electrocatalytic interfaces
Zhihao Wang1, Xu Zhang1, Lin He1
1School of Chemistry and Materials Science, Key Laboratory of Functional Inorganic Material Chemistry (Ministry of Education), National Center for International Research on Catalytic Technology (Ministry of Science and Technology), Heilongjiang University Harbin P. R. China zmchen@hlju.edu.cn zyren@hlju.edu.cn.
None:
Molecular engineering provides effective strategies for optimizing electrocatalytic interfaces; however, a physically grounded conceptual framework that provides an intuitive picture of molecular engineering is still lacking. This perspective proposes a distance-aware framework that decouples molecular modification effects into three distinct spatial zones relative to the active site, each characterized by different dominant interactions. Inner-layer engineering targets the angstrom-scale region immediately adjacent to the surface, where modifiers directly participate in charge redistribution and intermediate stabilization to tailor surface energetics. Intermediate-layer modulation governs the local microenvironment, mediating reactivity through local concentration fields, hydrogen-bond networks, and electrostatic double-layer effects. Outer-layer engineering operates at the bulk interface, controlling macroscopic wettability, interfacial shielding, and long-term structural stability. By establishing this spatially resolved and decoupled perspective, we propose a distance-based framework to systematically organize and interpret the fragmented modification phenomena, thereby providing a physically grounded structured framework for organizing molecular engineering strategies.
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