电催化剂
马库斯理论
化学
电子转移
能斯特方程
密度泛函理论
氧化还原
交换电流密度
化学物理
化学动力学
热力学
标准氢电极
标准电极电位
电极电位
电化学
反应速率
物理化学
量子
过渡态理论
阿累尼乌斯方程
电化学动力学
动能
工作(物理)
反应机理
动力学
量子化学
阳极
电子结构
可逆氢电极
电子
化学反应
计算化学
费米能级
反应速率常数
材料科学
电化学电位
作者
Junghyun Yoon,Martin Z. Bazant
标识
DOI:10.1149/1945-7111/ae3c46
摘要
The quantum theory of coupled ion-electron transfer (CIET) unifies phenomenological Butler-Volmer kinetics with the Marcus theory of electron transfer in a single, thermodynamically consistent modeling framework for Faradaic reaction rates. Here, we extend CIET theory to explicitly incorporate the electronic properties of the electrode to highlight the direct influence of electrode quantum physics on reaction kinetics. For electrocatalytic reactions limited by ion transfer, the modified formulation for “ion-coupled electron transfer” (ICET) predicts Butler-Volmer kinetics with an exchange current density having an Arrhenius dependence on the electrode’s work function times the anodic charge-transfer coefficient. Notably, this formulation alters reaction rates via the electron concentration, which is controlled by the electrode’s Fermi energy and the surface potential at the reaction plane relative to that of the reference electrode, without changing the Nernst equilibrium potential of the redox couple. The theory explains experimental trends in the rates of the hydrogen evolution reaction (HER) in acid and aqueous iron redox reactions on different metals. CIET theory thus provides a convenient basis for the design of electrocatalytic interfaces, combining insights from molecular simulations, classical kinetic models, and experimental characterization.
科研通智能强力驱动
Strongly Powered by AbleSci AI