Exploring the Mechanisms of Charge Transfer and Identifying Active Sites in the Hydrogen Evolution Reaction Using Hollow C@MoS2‐Au@CdS Nanostructures as Photocatalysts

材料科学 等离子体子 光催化 半导体 拉曼光谱 化学物理 纳米技术 光谱学 光化学 纳米颗粒 纳米复合材料 密度泛函理论 光电子学 催化作用 计算化学 化学 量子力学 生物化学 光学 物理
作者
Zhenming Xu,Huijie Liu,Jingliang Yang,Xiu Gong,Yanli Chen,Yang Meng,Qiong Peng,Junfei Ding,Yunpeng Qu,Qixuan Zeng,Xiaosi Qi,Ye Yang
出处
期刊:Advanced Materials [Wiley]
卷期号:37 (17): e2501091-e2501091 被引量:37
标识
DOI:10.1002/adma.202501091
摘要

Abstract Plasmonic metal–semiconductor nanocomposites are promising candidates for considerably enhancing the solar‐to‐hydrogen conversion efficiency of semiconductor‐based photocatalysts across the entire solar spectrum. However, the underlying enhancement mechanism remains unclear, and the overall efficiency is still low. Herein, a hollow C@MoS 2 ‐Au@CdS nanocomposite photocatalyst is developed to achieve improved photocatalytic hydrogen evolution reaction (HER) across a broad spectral range. Transient absorption spectroscopy experiments and electromagnetic field simulations demonstrate that compared to the treated sample, the untreated sample exhibits a high density of sulfur vacancies. Consequently, under near‐field enhancement, photogenerated electrons from CdS and hot electrons generated by intra‐band or inter‐band transitions of Au nanoparticles are efficiently transferred to the CdS surface, thus significantly improving the HER activity of CdS. Additionally, in situ, Raman spectroscopy provided spectral evidence of S─H intermediate species on the CdS surface during the HER process, which is verified through isotope experiments. Density functional theory simulations identify sulfur atoms in CdS as the catalytic active sites for HER. These findings enhance the understanding of charge transfer mechanisms and HER pathways, offering valuable insights for the design of plasmonic photocatalysts with enhanced efficiency.
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