Department of Chemistry, Western Michigan University, Kalamazoo, Michigan 49008, USA.
ACS Appl Mater Interfaces. 2011 Nov;3(11):4531-8. doi: 10.1021/am201221x. Epub 2011 Nov 4.
Well-defined Au/ZnO nanoparticle composites were prepared by modifying ZnO with preformed Au nanoparticles protected with bifunctional glutathione ligand. In this approach, the Au nanoparticles were highly monodisperse and their loading on ZnO surface could be precisely controlled by the anchoring conditions. Steady-state and time-resolved photoluminescence of the composites revealed the ability of the Au nanoparticles to efficiently extract conduction band electrons from the photoexcited ZnO. The composites exhibited strongly enhanced photocatalytic activity without requiring thermal activation process in degrading organic substrates in both oxidative and reductive pathways. A clear correlation between the photocatalytic activity and the Au loading was found for both oxidative and reductive photocatalytic reactions. These results demonstrate that thiolate-protected AuNPs can significantly enhance the charge separation by extracting electrons from the photoexcited ZnO and consequently improve the photocatalytic activity of the composites.
通过用双官能团谷胱甘肽配体修饰 ZnO 来制备具有明确形貌的 Au/ZnO 纳米粒子复合材料。在这种方法中,Au 纳米粒子具有高度单分散性,并且通过锚固条件可以精确控制其在 ZnO 表面的负载量。复合材料的稳态和时间分辨光致发光表明,Au 纳米粒子能够有效地从光激发的 ZnO 中提取导带电子。该复合材料在降解有机底物的氧化和还原途径中均不需要热激活过程,表现出很强的光催化活性。对于氧化和还原光催化反应,都发现光催化活性与 Au 负载量之间存在明显的相关性。这些结果表明,巯基保护的 AuNPs 可以通过从光激发的 ZnO 中提取电子来显著增强电荷分离,并由此提高复合材料的光催化活性。