| Literature DB >> 27160795 |
Yiqiang Sun1, Yugang Sun2, Tao Zhang1, Guozhu Chen1, Fengshou Zhang1, Dilong Liu3, Weiping Cai3, Yue Li3, Xianfeng Yang4, Cuncheng Li1.
Abstract
Nanostructured ZnO exhibits high chemical stability and unique optical properties, representing a promising candidate among photocatalysts in the field of environmental remediation and solar energy conversion. However, ZnO only absorbs the UV light, which accounts for less than 5% of total solar irradiation, significantly limiting its applications. In this article, we report a facile and efficient approach to overcome the poor wettability between ZnO and Au by carefully modulating the surface charge density on Au nanoparticles (NPs), enabling rapid synthesis of Au@ZnO core-shell NPs at room temperature. The resulting Au@ZnO core-shell NPs exhibit a significantly enhanced plasmonic absorption in the visible range due to the Au NP cores. They also show a significantly improved photocatalytic performance in comparison with their single-component counterparts, i.e., the Au NPs and ZnO NPs. Moreover, the high catalytic activity of the as-synthesized Au@ZnO core-shell NPs can be maintained even after many cycles of photocatalytic reaction. Our results shed light on the fact that the Au@ZnO core-shell NPs represent a promising class of candidates for applications in plasmonics, surface-enhanced spectroscopy, light harvest devices, solar energy conversion, and degradation of organic pollutants.Entities:
Year: 2016 PMID: 27160795 DOI: 10.1039/c6nr00933f
Source DB: PubMed Journal: Nanoscale ISSN: 2040-3364 Impact factor: 7.790