过电位
双功能
析氧
催化作用
过渡金属
电催化剂
双功能催化剂
化学
纳米技术
分解水
材料科学
密度泛函理论
贵金属
电解质
化学工程
金属
无机化学
异质结
化学物理
氧还原反应
协同催化
分子动力学
能量转换
作者
Kai Zhang,Jianjun Fang,Chenkun Li,Tong Xing,Qi Xiang,Xian-Fang Yue,Breno R. L. Galvão,Jing Li
摘要
Searching for efficient and stable bifunctional electrocatalysts for the oxygen evolution reaction (OER) and oxygen reduction reaction (ORR) is crucial for realizing large-scale applications of electrolytic water splitting processes for clean energy production. Herein, using density functional theory (DFT) calculations, we systematically investigate the catalytic activity of 22 different transition metal (TM) atoms anchored on WSe2/WS2 heterostructures, which are screened as possible catalysts for both OER and ORR processes. Energetic analysis and ab initio molecular dynamics simulations showed that the proposed materials are stable under ambient conditions. The Pd@WSe2/WS2 structure is predicted to be an outstanding candidate for a bifunctional OER/ORR electrocatalyst, with an OER overpotential of 0.41 V and an ORR overpotential of 0.49 V, which are comparable to those of traditional monofunctional catalysts. Perhaps even more promisingly, we obtained a structure that does not require expensive noble metals (Ni@WSe2/WS2) that exhibit low overpotentials for both the OER and ORR (0.48 V/0.78 V) and could be an interesting alternative to bifunctional catalysts. The mechanisms behind the reactions involved in the catalysis are explained in detail using several calculated electronic properties. Our results not only endow TM@WSe2/WS2 bifunctional electrocatalysts with excellent catalytic activities, but also provide important insights for advancing clean energy technologies.
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