Concave and Convex Molecular Curvature Modulates Spatial Electronic Environments for Controlled Electrocatalysis

化学 曲率 催化作用 电化学 化学物理 电催化剂 纳米技术 拓扑(电路) 分子动力学 分子 结晶学 吸附 光谱学 原位 反向 多相催化 选择性 电子结构 半导体 高分辨率 过渡金属 金属 分子模型 纳米线 轨道能级差 立体化学 负曲率 计算化学 分子轨道
作者
Fuping Pan,Cheng Yang,Jian Cai,Yun Song,Yinger Xin,Jianjun Su,Hui Li,Maoyu Wang,T C Wang,Yuexiang Hou,Ruquan Ye,Kai‐Jie Chen
出处
期刊:Journal of the American Chemical Society [American Chemical Society]
标识
DOI:10.1021/jacs.6c01391
摘要

High Resolution Image Download MS PowerPoint Slide Molecular catalysts offer well-defined active sites and tailorable structures that together govern their intrinsic activity. While molecular curvature has emerged as a powerful tool for modulating catalytic activity, the role of the local curvature environment remains poorly understood. Here, we demonstrate that the catalytic properties of iron phthalocyanines (FePc) are strongly influenced by the spatial concave and convex architectures. Although FePc has been predominantly reported to catalyze four-electron O 2 reduction, reports of its two-electron pathway are rare. By depositing FePc on carbon supports with a cylindrical mesopore (concave-FePc) and its inverse architecture (convex-FePc), we demonstrate that convex-FePc preferentially catalyzes the four-electron O 2 reduction route, whereas concave-FePc favors the two-electron pathway, primarily producing H 2 O 2 with selectivity exceeding 80%. In situ electrochemical infrared spectroscopy and theoretical calculations reveal that local concave/convex geometries of FePc modulate the electronic properties of the Fe site and its interaction with key intermediates via spatial orbital rearrangement. Specifically, the confined environment under the concave curvature reduces orbital overlaps between Fe d z2 of FePc and O p of *OOH, thereby weakening *OOH adsorption and boosting O 2 -to-H 2 O 2 conversion. This curvature-dependent activity also extends to CoPc/MnPc and electrochemical CO 2 reduction, underscoring the versatility of this approach. Our findings present a general design framework for engineering the catalytic performance of molecular catalysts through a tailored curvature environment.
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