Direct Hot-Electron Transfer at the Au Nanoparticle/Monolayer Transition-Metal Dichalcogenide Interface Observed with Ultrahigh Spatiotemporal Resolution

Plasmon-induced hot-electron transfer at the metallic nanoparticle/semiconductor interface is the basis of plasmon-enhanced photocatalysis and energy harvesting. However, limited by the nanoscale size of hot spots and femtosecond time scale of hot-electron transfer, direct observation is still chall...

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Veröffentlicht in:Nano letters 2024-03, Vol.24 (9), p.2931-2938
Hauptverfasser: Tang, Jinglin, Li, Yaolong, Ye, Sheng, Jiang, Pengzuo, Xue, Zhaohang, Li, Xiaofang, Lyu, Xiaying, Liu, Qinyun, Chu, Saisai, Yang, Hong, Wu, Chengyin, Hu, Xiaoyong, Gao, Yunan, Wang, Shufeng, Sun, Quan, Lu, Guowei, Gong, Qihuang
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Sprache:eng
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Zusammenfassung:Plasmon-induced hot-electron transfer at the metallic nanoparticle/semiconductor interface is the basis of plasmon-enhanced photocatalysis and energy harvesting. However, limited by the nanoscale size of hot spots and femtosecond time scale of hot-electron transfer, direct observation is still challenging. Herein, by using spatiotemporal-resolved photoemission electron microscopy with a two-color pump–probe beamline, we directly observed such a process with a concise system, the Au nanoparticle/monolayer transition-metal dichalcogenide (TMD) interface. The ultrafast hot-electron transfer from Au nanoparticles to monolayer TMDs and the plasmon-enhanced transfer process were directly measured and verified through an in situ comparison with the Au film/TMD interface and free TMDs. The lifetime at the Au nanoparticle/MoSe2 interface decreased from 410 to 42 fs, while the photoemission intensities exhibited a 27-fold increase compared to free MoSe2. We also measured the evolution of hot electrons in the energy distributions, indicating the hot-electron injection and decay happened in an ultrafast time scale of ∼50 fs without observable electron cooling.
ISSN:1530-6984
1530-6992
DOI:10.1021/acs.nanolett.4c00324