Chen Wei, Li Xiaojie, Wang Fei, Javaid Shaghraf, Pang Yingping, Chen Jiayi, Yin Zongyou, Wang Shaobin, Li Yunguo, Jia Guohua
Curtin Institute of Functional Molecules and Interfaces, School of Molecular and Life Sciences, Curtin University, Bentley, Perth, WA, 6102, Australia.
Department of Chemical Engineering, Curtin University, Bentley, Perth, WA, 6102, Australia.
Small. 2020 Mar;16(12):e1902231. doi: 10.1002/smll.201902231. Epub 2019 Nov 26.
For the first time, colloidal gold (Au)-ZnSe hybrid nanorods (NRs) with controlled size and location of Au domains are synthesized and used for hydrogen production by photocatalytic water splitting. Au tips are found to grow on the apices of ZnSe NRs nonepitaxially to form an interface with no preference of orientation between Au(111) and ZnSe(001). Density functional theory calculations reveal that the Au tips on ZnSe hybrid NRs gain enhanced adsorption of H compared to pristine Au, which favors the hydrogen evolution reaction. Photocatalytic tests reveal that the Au tips on ZnSe NRs effectively enhance the photocatalytic performance in hydrogen generation, in which the single Au-tipped ZnSe hybrid NRs show the highest photocatalytic hydrogen production rate of 437.8 µmol h g in comparison with a rate of 51.5 µmol h g for pristine ZnSe NRs. An apparent quantum efficiency of 1.3% for hydrogen evolution reaction for single Au-tipped ZnSe hybrid NRs is obtained, showing the potential application of this type of cadmium (Cd)-free metal-semiconductor hybrid nanoparticles (NPs) in solar hydrogen production. This work opens an avenue toward Cd-free hybrid NP-based photocatalysis for clean fuel production.
首次合成了金(Au)域尺寸和位置可控的胶体金(Au)-硒化锌(ZnSe)混合纳米棒(NRs),并将其用于光催化水分解制氢。发现金尖端非外延生长在硒化锌纳米棒的顶端,形成了一个金(111)和硒化锌(001)之间无择优取向的界面。密度泛函理论计算表明,与原始金相比,硒化锌混合纳米棒上的金尖端对氢的吸附增强,这有利于析氢反应。光催化测试表明,硒化锌纳米棒上的金尖端有效地提高了制氢过程中的光催化性能,其中单个带金尖端的硒化锌混合纳米棒的光催化产氢速率最高,为437.8 μmol h g,而原始硒化锌纳米棒的产氢速率为51.5 μmol h g。单个带金尖端的硒化锌混合纳米棒的析氢反应表观量子效率为1.3%,表明这类无镉金属-半导体混合纳米粒子(NPs)在太阳能制氢方面具有潜在应用。这项工作为基于无镉混合纳米粒子的光催化生产清洁燃料开辟了一条途径。