Zhang Rui, Wang Qi, Zhang Jun, Lu Qipeng, Liu Wenxiu, Yin Shu, Cao Wenbin
Department of Inorganic Nonmetallic Materials, School of Materials Science and Engineering, University of Science and Technology Beijing, Beijing 100083, People's Republic of China.
Nanotechnology. 2019 Oct 25;30(43):434001. doi: 10.1088/1361-6528/ab3383. Epub 2019 Jul 19.
Preparation of a p-n heterojunction with hierarchical structure is of great significance for photocatalysis due to its large specific surface area, abundant active sites and increased charge separation rate. Herein, we designed the novel p-n heterojunction photocatalyst TiO/SnO microflower (TiO/F-SnO) with hierarchical architecture by decorating TiO nanoparticles on the surface of the SnO microflower via a simple hydrothermal route. Compared to pure TiO and TiO/SnO with a microplate structure (TiO/P-SnO), TiO/F-SnO heterojunctions exhibited significantly enhanced photocatalytic performances for organics removal such as toluidine blue O (TBO) and methylene blue (MB) under daylight fluorescent lamp irradiation (350-800 nm). The improved performance was not only ascribed to the promoted charge transfer and separation efficiency induced by the formation of p-n junction, but also attributed to the larger specific surface area, sufficient active sites and stronger redox ability provided by the hierarchical microflowers. Moreover, after three photocatalytic cycles (24 h), the TiO/SnO heterojunction still exhibited a stable photocatalytic activity. Finally, the photocatalytic enhancement mechanism for the TiO/SnO heterojunction was proposed based on band alignments calculation and the active species trapping experiments.
制备具有分级结构的p-n异质结对于光催化具有重要意义,因为其具有大的比表面积、丰富的活性位点和提高的电荷分离率。在此,我们通过简单的水热路线在SnO微花表面修饰TiO纳米颗粒,设计了具有分级结构的新型p-n异质结光催化剂TiO/SnO微花(TiO/F-SnO)。与具有微板结构的纯TiO和TiO/SnO(TiO/P-SnO)相比,TiO/F-SnO异质结在日光荧光灯照射(350-800 nm)下对去除诸如甲苯胺蓝O(TBO)和亚甲基蓝(MB)等有机物表现出显著增强的光催化性能。性能的提高不仅归因于p-n结形成引起的电荷转移和分离效率的提高,还归因于分级微花提供的更大比表面积、充足的活性位点和更强的氧化还原能力。此外,经过三个光催化循环(24小时)后,TiO/SnO异质结仍表现出稳定的光催化活性。最后,基于能带排列计算和活性物种捕获实验,提出了TiO/SnO异质结的光催化增强机理。