Type-I CdS/ZnS Core/Shell Quantum Dot-Gold Heterostructural Nanocrystals for Enhanced Photocatalytic Hydrogen Generation

量子点 光催化 化学 纳米技术 纳米晶 半导体 带隙 载流子 超快激光光谱学 纳米颗粒 光电子学 材料科学 激光器 物理 光学 催化作用 生物化学
作者
Na Jin,Yonglei Sun,Wenwu Shi,Ping Wang,Yasutaka Nagaoka,Tong Cai,Rongzhen Wu,Lacie Dube,Hawi N. Nyiera,Yuzi Liu,Tomoyasu Mani,Xinzhong Wang,Jing Zhao,Ou Chen
出处
期刊:Journal of the American Chemical Society [American Chemical Society]
卷期号:145 (40): 21886-21896 被引量:65
标识
DOI:10.1021/jacs.3c06065
摘要

Developing Type-I core/shell quantum dots is of great importance toward fabricating stable and sustainable photocatalysts. However, the application of Type-I systems has been limited due to the strongly confined photogenerated charges by the energy barrier originating from the wide-bandgap shell material. In this project, we found that through the decoration of Au satellite-type domains on the surface of Type-I CdS/ZnS core/shell quantum dots, such an energy barrier can be effectively overcome and an over 400-fold enhancement of photocatalytic H2 evolution rate was achieved compared to bare CdS/ZnS quantum dots. Transient absorption spectroscopic studies indicated that the charges can be effectively extracted and subsequently transferred to surrounding molecular substrates in a subpicosecond time scale in such hybrid nanocrystals. Based on density functional theory calculations, the ultrafast charge separation rates were ascribed to the formation of intermediate Au2S layer at the semiconductor–metal interface, which can successfully offset the energy confinement introduced by the ZnS shell. Our findings not only provide insightful understandings on charge carrier dynamics in semiconductor–metal heterostructural materials but also pave the way for the future design of quantum dot-based hybrid photocatalytic systems.
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