化学
半醌
离域电子
激进的
共价键
光化学
钴
催化作用
组合化学
电子顺磁共振
密度泛函理论
计算化学
对偶(语法数字)
选择性
金属有机骨架
纳米技术
双重角色
动力学
电子效应
控制重构
电子结构
化学物理
自旋(空气动力学)
醌
有机合成
作者
Qianfeng Gu,Yinger Xin,Mingzi Sun,Yuanzhang Zhao,Yaqi Liao,Yuchan Zhang,Zihao Chen,Yifan Cui,Lei Zhang,Yung‐Kang Peng,Qi Liu,Yang Ren,Fu‐Rong Chen,Bolong Huang,R. Ye,Qichun Zhang
摘要
Spin manipulation has emerged as a promising strategy for enhancing molecular electrocatalytic performance. However, precisely controlling dual spin centers and delineating their contribution to reaction kinetics remain a considerable challenge. Herein, we demonstrate that incorporating quinone moieties into a grid-like covalent organic framework (COF) enables a dual-spin-center catalysis system, simultaneously stabilizing semiquinone radicals and inducing an electronic reconfiguration with low-spin character at the cobalt center. Spectroscopic and theoretical analyses reveal a synergistic mechanism. The spin-polarized electron density of semiquinone radicals creates an internal potential gradient that promotes electron transfer, while their favorable π–π interactions enhance CO 2 affinity and boost CO 2 activation efficiency. Meanwhile, the cobalt site with a computed e g 1 occupancy (low-spin) leads to more delocalized d-electrons, a downshifted d-band center, and optimized intermediate adsorption. As a result, the dual-spin system achieves reduced barriers for *COOH formation via spin-coupling interactions and facilitated *CO desorption, collectively enabling near-unity selectivity for CO 2 -to-CO conversion. This work establishes the concurrent engineering of organic and metal spin environments as a foundational design principle for advanced molecular electrocatalysts.
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