Structure-Performance Descriptors and the Role of the Axial Oxygen Atom on M–N 4 –C Single-Atom Catalysts for Electrochemical CO 2 Reduction
作者:Jing Wang, Mingyue Zheng, Xian Zhao, Weiliu Fan · 发表于:ACS Catalysis · 年份:2022 · DOI:10.1021/acscatal.2c00429 · 被引用次数:149 · 研究领域:CO2 Reduction Techniques and Catalysts、Electrocatalysts for Energy Conversion、Machine Learning in Materials Science
Revealing and characterizing the catalytic sites, along with elucidating a convenient activity descriptor, can provide essential guidance in determining efficient electrocatalytic catalysts for the CO 2 reduction reaction (CO 2 RR). In this work, the mechanism of CO 2 reduction to methane (CH 4 ) on 23 transition metal-coordinated nitrogen-doped carbon M–N 4 –C single-atom catalysts (SACs) was studied by density functional theory calculations, a step forward to revealing the effects of the axial O atom (M–N 4 O–C) on their catalytic activity. The electrocatalytic reduction activity of CO 2 over M–N 4 –C SACs is strongly dependent on the outmost d-shell electron numbers and electronegativity of the selected metals. The introduction of the axial O atom changes the coordination structure of the central metal atoms, which not only improves the stability of M–N 4 O–C SACs (especially electrochemical stability) but also affects the adsorption strength of intermediate species and then improves or reduces the catalytic activity, which depends on the intrinsic properties of the metal atoms. More importantly, by considering the comprehensive effects of the number of outmost d-shell electrons, the electronegativity, coordinate numbers, and bonding length of the central metal atom and the nearest neighbor atom, a descriptor (φ) based on the intrinsic properties of materials was developed to correlate the catalytic activity. The volcano-shaped relationships between the φ and limiting pote...