密度泛函理论
合理设计
电负性
催化作用
卤素
化学
选择性
计算化学
电子结构
化学物理
电子效应
配体(生物化学)
金属
混合功能
电子转移
结合能
氧化还原
限制
工作(物理)
材料科学
氢
分子
纳米技术
设计要素和原则
作者
Yue Zhu,Wei Wei,Zhiyi Li,Yu Han
出处
期刊:Energy & Fuels
[American Chemical Society]
日期:2026-03-24
卷期号:40 (13): 6995-7003
被引量:1
标识
DOI:10.1021/acs.energyfuels.6c00347
摘要
Transition-metal single-atom catalysts based on M–N–C motifs (M = Fe, Ni, Co) are promising electrocatalysts for the CO 2 reduction reaction (CO 2 RR) because of their well-defined active sites, high metal utilization, and tunable electronic structures. In particular, Ni–N 4 sites with axial ligands have recently shown markedly enhanced activity and selectivity by modifying the electronic environment of the Ni center. However, the microscopic role of axial halogen coordination in Ni-based single-atom catalysts remains poorly understood. Herein, we employ density functional theory (DFT) calculations to elucidate how halogen ligands (F, Cl, Br, and I) modulate the electronic structure of Ni–N 4 –C and thereby govern its CO 2 RR performance. We reveal that (i) the ligand electronegativity systematically shifts the Ni 3d energy levels and thus regulates CO 2 adsorption; (ii) halogen-induced electron transfer precisely tunes the binding strength of the key *COOH intermediate, following the trend F > Cl > Br > I; and (iii) among the series, the NiN 4 –F catalyst exhibits the lowest limiting potential and the highest predicted selectivity for CO formation over the competing hydrogen evolution reaction. This work clarifies the atomic-scale mechanism of halogen coordination and establishes a quantitative design principle linking coordination chemistry, electronic structure, and catalytic performance, providing a theoretical basis for high-throughput screening and rational design of high-performance CO 2 RR electrocatalysts.
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