Hassan Mostafa Afifi, Johar Muhammad Ali, Waseem Aadil, Bagal Indrajit V, Ha Jun-Seok, Ryu Sang-Wan
Opt Express. 2019 Feb 18;27(4):A184-A196. doi: 10.1364/OE.27.00A184.
A core-shell structure, formed in a nanostructured photoanode, is an effective strategy to achieve high solar-to-hydrogen conversion efficiency. In this study, we present a facile and simple synthesis of a unique vertically aligned ZnO/ZnS core-shell heterostructure nanowires (NWs) on a Si substrate. Well-aligned ZnO NWs were grown on Si (100) substrates on a low-temperature ZnO buffer layer by metal-organic chemical vapor deposition. The ZnO NWs were then coated with various thicknesses of ZnS shell layers using atomic layer deposition. The structural characterizations exhibit the well-developed ZnO/ZnS core-shell NWs heterostructure. The as-prepared ZnO/ZnS core-shell NWs was applied as photoanode for photoelectrochemical (PEC) water splitting. This unique ZnO/ZnS core-shell NWs photoanode shows photocurrent density of 1.21 mA cm, which is 8.5 times higher than bare ZnO NWs. The PEC performance and the applied-bias-photon-to-current conversion efficiency of ZnO/ZnS core-shell NWs photoanode are further improved with the optimized ZnS shell. The type-II band alignment of the heterostructure photoanode is the key factor for their excellent PEC performance. Importantly, this type of core-shell NWs heterostructure provides useful insights into novel electrode design and fabrication based on earth abundant materials for low-cost solar fuel generation.
在纳米结构光阳极中形成的核壳结构是实现高太阳能到氢能转换效率的有效策略。在本研究中,我们展示了一种在硅衬底上简便合成独特的垂直排列的ZnO/ZnS核壳异质结构纳米线(NWs)的方法。通过金属有机化学气相沉积在低温ZnO缓冲层上的Si(100)衬底上生长排列良好的ZnO NWs。然后使用原子层沉积法在ZnO NWs上涂覆不同厚度的ZnS壳层。结构表征显示出发育良好的ZnO/ZnS核壳NWs异质结构。所制备的ZnO/ZnS核壳NWs用作光电化学(PEC)水分解的光阳极。这种独特的ZnO/ZnS核壳NWs光阳极显示出1.21 mA cm的光电流密度,比裸ZnO NWs高8.5倍。通过优化ZnS壳层,进一步提高了ZnO/ZnS核壳NWs光阳极的PEC性能和施加偏压光子到电流的转换效率。异质结构光阳极的II型能带排列是其优异PEC性能的关键因素。重要的是,这种类型的核壳NWs异质结构为基于储量丰富的材料进行低成本太阳能燃料生产的新型电极设计和制造提供了有用的见解。