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首页> 外文期刊>Applied Surface Science >Insights into charge transfer and solar light photocatalytic activity induced by the synergistic effect of defect state and plasmon in Au nanoparticle-decorated hierarchical 3D porous ZnO microspheres
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Insights into charge transfer and solar light photocatalytic activity induced by the synergistic effect of defect state and plasmon in Au nanoparticle-decorated hierarchical 3D porous ZnO microspheres

机译:缺陷态和等离子体激元协同作用在金纳米粒子修饰的分层3D多孔ZnO微球中引起的电荷转移和太阳光光催化活性的见解

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摘要

This study provides insights into the charge transfer and solar light photocatalytic activity induced by the synergistic effect between defect state and plasmon in Au nanoparticle-decorated hierarchical 3D porous ZnO microspheres. Photoluminescence emission shows that the photogenerated electrons of ZnO are efficiently transferred from its defect level to the conduction band (CB) induced through the coupling action of the defect state and plasmon. Compared with the pure ZnO microsphere photocatalysts, the fabricated Au/ZnO microsphere photocatalysts show remarkably enhanced activity for the decomposition of methylene blue dyes under solar-light illumination. Moreover, the photocatalytic performance of the Au/ZnO microspheres was manipulated by tuning the size of the Au nanoparticles (NPs). When decorated with 10 nm Au NPs, the Au/ZnO microsphere photocatalyst achieves a rate constant of 0.09846 min(-1), 26 and 8.5 times higher than those of the pure ZnO microsphere photocatalysts (0.00378 min(-1)) and the Au/ZnO microsphere photocatalysts decorated with 30 nm Au NPs (0.01154 min(-1)), respectively.. The enhanced photocatalytic performance of the Au/ZnO microsphere photocatalysts is ascribed to the defect state-plasmon coupling-induced efficient transfer of photogenerated electrons from the defect level to the CB of ZnO. This work enhances the understanding of the defect state-plasmon coupling-induced enhanced photocatalytic activity in metal/semiconductor heterostructure photocatalysts.
机译:这项研究提供了洞见的金纳米粒子装饰的分层3D多孔ZnO微球中的缺陷状态和等离子体激元之间的协同效应所诱导的电荷转移和太阳光光催化活性。光致发光显示,ZnO的光生电子有效地从其缺陷能级转移到通过缺陷态和等离子体激元的耦合作用而诱导的导带(CB)。与纯ZnO微球光催化剂相比,所制备的Au / ZnO微球光催化剂在日光照射下具有显着增强的亚甲基蓝染料分解活性。此外,Au / ZnO微球的光催化性能是通过调整Au纳米颗粒(NPs)的大小来控制的。当用10 nm Au NPs装饰时,Au / ZnO微球光催化剂的速率常数为0.09846 min(-1),比纯ZnO微球光催化剂(0.00378 min(-1))的速率常数高26倍和8.5倍/ ZnO微球光催化剂分别用30 nm Au NPs(0.01154 min(-1))修饰。Au/ ZnO微球光催化剂的增强光催化性能归因于缺陷状态-等离子体耦合诱导光生电子有效转移。 ZnO CB的缺陷水平。这项工作增进了对金属/半导体异质结构光催化剂中缺陷状态-等离子体耦合引起的增强的光催化活性的理解。

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