反应性(心理学)
电化学
电化学电位
化学
活动站点
催化作用
电子结构
原子轨道
分子轨道
化学物理
费米能级
石墨烯
氧化还原
反应机理
电极电位
光化学
电催化剂
金属
光合反应中心
电子转移
轨道能级差
纳米技术
计算化学
过渡金属
电化学能量转换
势能
标准电极电位
活动中心
材料科学
反应中间体
费米能量
作者
Qi Wang,Yawen Tong,Yi Luo,Ting Zeng,Yunchen Gao,Xiyu Gu
标识
DOI:10.1021/acscatal.6c01045
摘要
In electrocatalysis, the applied potential plays an important role in tuning the activity and selectivity; however, the underlying factors that govern the potential-dependent reactivity are not well-understood yet. Herein, the potential-governed CO2 electrochemical reduction to CO on Fe, Co, and Ni supported on nitrogen-doped graphene was used as a probe reaction to investigate how the applied potential modulates the reactivity. We found that the reactivity was highly dependent on the applied potential, and under the proper potentials, the pyrrolic-NiN4C exhibited the highest CO selectivity, while pyrrolic-CoN4C exhibited the lowest onset potential. The detailed analysis of the electronic structure and bonding process between the active metal center and reaction intermediates indicated that the potential can directly affect the orbital hybridization during bonding. As the reduction potential shifted negatively, the Fermi level of the active center rose, while the energy of the dz2 orbital decreased, which is the primary contributor to bonding with reaction intermediates. Concurrently, the electron occupancy of the frontier orbitals underwent significant rearrangement. These findings underscore the critical importance of understanding potential effects in elucidating electrocatalytic reaction mechanisms, providing insights for accurately assessing the behavior of catalytic active sites under operational electrochemical conditions.
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