双功能
催化作用
合理设计
析氧
电子转移
化学
配位复合体
纳米技术
电催化剂
分解水
表面工程
氢
材料科学
计算机科学
双功能催化剂
分子工程
吸附
密度泛函理论
工作(物理)
生化工程
磷酸果糖激酶2
分子机器
协调数
制氢
定向进化
作者
Jiahang Li,Suhang Li,Chong Yan,Jiajun Yu,Qinzhuang Liu,Ruo-Ya Wang,Dongwei Ma
标识
DOI:10.1021/acscatal.6c03421
摘要
Abstract The rational design of bifunctional electrocatalysts for the hydrogen evolution reaction (HER) and oxygen evolution reaction (OER) is essential for achieving efficient and cost-effective overall water splitting. Atomically dispersed transition-metal catalysts, including single-atom catalysts and dual-atom catalysts (DACs), have emerged as a prominent class of heterogeneous catalysts, in which coordination engineering plays a decisive role in tuning catalytic performance. Herein, we explore coordination-engineered bifunctional overall water splitting electrocatalysts using graphene-supported DACs (TM1TM2-C6–xNx) as model systems. By tuning C/N coordination and dual-metal combinations (Fe, Co, Ni, and Cu), a library of 228 structures was constructed. A three-step screening strategy, combining constant-charge and constant-potential density functional theory with kinetic analysis of proton-coupled electron transfer (PCET), identifies 24 highly active candidates (TM1TM2 = CoNi, CoCu, and Co2) with a mixed C/N coordination for the OER. These catalysts exhibit overpotentials comparable to that of IrO2 and low PCET barriers (lower than 0.40 eV), among which 22 also show high HER activity. Machine learning reveals clear coordination-dependent structure–performance relationships. Such bifunctionality arises from coordination engineering that enables the simultaneous optimization of OER intermediate adsorption and the hydrogen binding strength for HER. This work establishes coordination engineering as an effective strategy for designing high-performance bifunctional dual atom electrocatalysts for overall water splitting.
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