Jahurul Islam M, Amaranatha Reddy D, Han Noh Soo, Choi Jiha, Song Jae Kyu, Kim Tae Kyu
Department of Chemistry and Chemical Institute for Functional Materials, Pusan National University, Busan 609-735, Republic of Korea.
Department of Chemistry, Kyung Hee University, Seoul 130-701, Republic of Korea.
Phys Chem Chem Phys. 2016 Sep 14;18(36):24984-24993. doi: 10.1039/c6cp02246d.
An oxygen-vacancy rich, bismuth oxyiodide-based Z-scheme 3D hierarchical MoS/BiOI/AgI ternary nanocomposite photocatalyst was fabricated using a simple precipitation process in ethylene glycol and water. The presence of oxygen-vacancies in BiOI and the two-dimensional nature of molybdenum disulfides in the composite prolongs the charge carrier lifetime through a Z-scheme system and enhances the performance of the photocatalyst for the degradation of rhodamine B. On the basis of efficient separation of photoexcited electron-hole pairs, a mechanism is proposed whereby MoS and oxygen vacancy states increase charge carrier lifetimes and improve the photocatalytic activity. The Z-scheme mechanism of the photocatalysis is consistent with the results of static and time-resolved photoluminescence, scavenging, and terephthalic acid photoluminescence experiments. Among the as-synthesized photocatalysts, the one containing 2 wt% of MoS in a composite of MoS/BiOI/AgI exhibited the highest photocatalytic activity towards rhodamine B degradation, and its activity was 7 and 16 times higher than that of BiOI/AgI and BiOI, respectively. Degradation of phenol, the colorless model pollutant, was studied to confirm the visible-light photocatalytic performance of the MoS/BiOI/AgI composite. This easily fabricated Z-scheme based MoS/BiOI/AgI composite exhibits promising photocatalytic activity and will be useful for potential applications in energy and environmental areas.
通过在乙二醇和水中采用简单的沉淀法制备了一种富含氧空位的、基于碘氧化铋的Z型三维分级MoS/BiOI/AgI三元纳米复合光催化剂。BiOI中氧空位的存在以及复合材料中二硫化钼的二维性质通过Z型体系延长了电荷载流子寿命,并提高了光催化剂对罗丹明B的降解性能。基于光激发电子-空穴对的有效分离,提出了一种机制,即MoS和氧空位状态增加了电荷载流子寿命并提高了光催化活性。光催化的Z型机制与静态和时间分辨光致发光、清除和对苯二甲酸光致发光实验的结果一致。在合成的光催化剂中,MoS/BiOI/AgI复合材料中含有2 wt% MoS的样品对罗丹明B降解表现出最高的光催化活性,其活性分别比BiOI/AgI和BiOI高7倍和16倍。研究了无色模型污染物苯酚的降解,以确认MoS/BiOI/AgI复合材料的可见光光催化性能。这种易于制备的基于Z型的MoS/BiOI/AgI复合材料表现出有前景的光催化活性,将在能源和环境领域的潜在应用中发挥作用。