材料科学
密度泛函理论
纳米结构
电化学
等离子体子
铜
拉曼光谱
光谱学
放松(心理学)
纳米技术
电极
物理化学
光电子学
计算化学
化学
光学
社会心理学
心理学
物理
量子力学
冶金
作者
Hao Zhang,Jiefeng Diao,Yonghui Liu,Han Zhao,Bryan Kit Yue Ng,Zhiyuan Ding,Zhenyu Guo,Huanxin Li,Jun Jia,Chang Yu,Fang Xie,Graeme Henkelman,Maria‐Magdalena Titirici,John Robertson,Peter D. Nellist,Chunying Duan,Yuzheng Guo,D. Jason Riley,Jieshan Qiu
标识
DOI:10.1002/adma.202305742
摘要
Herein, facet-engineered Cu2 O nanostructures are synthesized by wet chemical methods for electrocatalytic HER, and it is found that the octahedral Cu2 O nanostructures with exposed crystal planes of (111) (O-Cu2 O) has the best hydrogen evolution performance. Operando Raman spectroscopy and ex-situ characterization techniques showed that Cu2 O is reduced during HER, in which Cu dendrites are grown on the surface of the Cu2 O nanostructures, resulting in the better HER performance of O-Cu2 O after HER (O-Cu2 O-A) compared with that of the as-prepared O-Cu2 O. Under illumination, the onset potential of O-Cu2 O-A is ca. 52 mV positive than that of O-Cu2 O, which is induced by the plasmon-activated electrochemical system consisting of Cu2 O and the in-situ generated Cu dendrites. Incident photon-to-current efficiency (IPCE) measurements and the simulated UV-Vis spectrum demonstrate the hot electron injection (HEI) from Cu dendrites to Cu2 O. Ab initio nonadiabatic molecular dynamics (NAMD) simulations revealed the transfer of photogenerated electrons (27 fs) from Cu dendrites to Cu2 O nanostructures is faster than electron relaxation (170 fs), enhancing its surface plasmons activity, and the HEI of Cu dendrites increases the charge density of Cu2 O. These make the energy level of the catalyst be closer to that of H+ /H2 , evidenced by the plasmon-enhanced HER electrocatalytic activity.
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