位阻效应
钯
二乙胺
油胺
电子效应
反键分子轨道
材料科学
计算化学
分子
动力学
溶解
胺气处理
吸附
金属
歧化过程
三乙胺
光化学
纳米颗粒
线性分子几何学
乙二胺
物理化学
配体(生物化学)
化学
化学物理
解吸
组合化学
作者
Mulin Yu,Shuo Liu,Shuo Liu,Yu‐Feng Tang,Lin‐Bo Liu,Lin‐Bo Liu,Peng‐Fei Sui,Xian‐Zhu Fu,Jing‐Li Luo,Subiao Liu,Subiao Liu
标识
DOI:10.1002/adfm.202531702
摘要
ABSTRACT The electronic‐steric impacts of ligands on metal surface are inherently interrelated and often act in concert for CO 2 electroreduction (CO 2 RR), but the crucial role of steric hindrance on CO 2 RR kinetics is always overlooked, and an in‐depth understanding of their trade‐off between kinetics and thermodynamics is still lacking. Here we assembled linear oleylamine (OAm) and n‐butylamine (BAm) ligands, and branched diethylamine (DEA) and triethylamine (TEA) ligands on palladium nanoparticles (Pd NPs) to study their electronic‐steric configuration impacts on CO 2 RR activity. Computational calculations based on electronic configuration from a thermodynamic perspective revealed that linear BAm‐Pd NPs favored *COOH adsorption and *CO desorption the most, but branched DEA‐Pd NPs rather than linear BAm‐Pd NPs achieved the largest j CO and the highest FE CO over 99% across the entire potential range. Molecular dynamics simulations and contact angle tests demonstrated that ligands underwent self‐adaption with local densities of CO 2 and H 2 O molecules on Pd NPs, and DEA reached a trade‐off between steric hindrance and electronic configuration, where moderate hydrophobic surface and steric hindrance accelerated CO 2 dissolution and diffusion, while electron‐donating amine transferred more electrons to Pd─CO antibonding orbital for better CO release. This study unravels the crucial roles of electronic‐steric configurations of amine‐containing ligands for electrocatalysis.
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