Zhou Mingjun, Li Jinze, Ye Zhefei, Ma Changchang, Wang Huiqin, Huo Pengwei, Shi Weidong, Yan Yongsheng
School of Chemistry & Chemical Engineering, ‡School of Environment, and #Institute of Green Chemistry and Chemical Technology Jiangsu University , Zhenjiang 212013, People's Republic of China.
ACS Appl Mater Interfaces. 2015 Dec 30;7(51):28231-43. doi: 10.1021/acsami.5b06997. Epub 2015 Dec 15.
Plasmonic heteronanostructures in semiconductor type display extraordinary photocatalytic efficiency induced by the plasmonic energy that operates in the Ag@CdSe-rGO hybrid ternary composites. The obtained plasmonic photocatalysts in nanoscale were fabricated by using a one-step hydrothermal method, during which the in situ nucleation of Ag@CdSe core-shell nanoparticles and the reduction of GO to rGO occurred simultaneously. Three different roles of Ag core and the junction of synergistic properties arising from the introduced rGO jointly enhanced the optical properties of CdSe. Localized plasmon resonance (LPR) effects of plasmonic Ag contribute to the separation of photogenerated e(-)/h(+) pairs via the electrons and resonant energy transfer. Electrochemical investigations have further confirmed the enhanced separation of the photogenerated e(-)/h(+) pairs. From comparative photocatalytic experiments of Ag@CdSe-rGO and Ag/CdSe-rGO, the plasmonic effect of the Ag core in the Ag@CdSe-rGO nanostructure serves to prolong the charge separation under visible light beyond common attached trimers.
半导体类型的等离子体异质纳米结构在 Ag@CdSe-rGO 混合三元复合材料中由等离子体能量引发,展现出非凡的光催化效率。通过一步水热法制备了纳米级的等离子体光催化剂,在此过程中,Ag@CdSe 核壳纳米颗粒的原位成核与 GO 还原为 rGO 同时发生。Ag 核的三种不同作用以及引入的 rGO 产生的协同性能界面共同增强了 CdSe 的光学性能。等离子体 Ag 的局域表面等离子体共振(LPR)效应通过电子和共振能量转移促进光生电子/空穴对的分离。电化学研究进一步证实了光生电子/空穴对分离的增强。通过 Ag@CdSe-rGO 和 Ag/CdSe-rGO 的对比光催化实验,Ag@CdSe-rGO 纳米结构中 Ag 核的等离子体效应有助于在可见光下延长电荷分离时间,超过普通附着三聚体。