†School of Chemistry and Chemical Engineering/Guangzhou Key Laboratory for Environmentally Functional Materials and Technology, Guangzhou University, Guangzhou 510006, PR China.
‡State Key Laboratory of Advanced Technology for Materials Synthesis and Processing, Wuhan University of Technology, Wuhan 430070, PR China.
ACS Appl Mater Interfaces. 2015 Aug 5;7(30):16387-94. doi: 10.1021/acsami.5b03527. Epub 2015 Jul 24.
The effective separation and transport of photoinduced electron-hole pairs in photoanodes is of great significance to photoelectrochemical and catalytic performance. Here, a facile and effective two-step strategy is developed to fabricate double-shelled ZnO/CdS/CdSe porous nanotube photoanodes from ZnO nanorod arrays (NRAs). Surprisingly, after the process of the deposition of CdS and CdSe, the ZnO nanorod arrays are partially dissolved, resulting in the formation of ZnO/CdS/CdSe porous nanotube arrays (NTAs). By virtue of their unique porous nanotube structure and cosensitization effect, the ZnO/CdS/CdSe porous NTAs show superior photoelectrochemical water-splitting performance and organic-pollutant-degradation ability under visible light irradiation, as well as excellent long-term photostability.
有效分离和传输光阳极中的光生电子-空穴对对于光电化学和催化性能具有重要意义。在这里,我们开发了一种简便有效的两步策略,从 ZnO 纳米棒阵列(NRAs)制备出具有双层壳结构的 ZnO/CdS/CdSe 多孔纳米管光阳极。令人惊讶的是,在沉积 CdS 和 CdSe 之后,部分 ZnO 纳米棒阵列溶解,形成了 ZnO/CdS/CdSe 多孔纳米管阵列(NTAs)。由于其独特的多孔纳米管结构和共敏化效应,ZnO/CdS/CdSe 多孔 NTAs 在可见光照射下表现出优异的光电化学水分解性能和有机污染物降解能力,以及优异的长期光稳定性。