Key Laboratory of Marine Chemistry Theory and Technology (Ministry of Education), College of Chemistry & Chemical Engineering, Ocean University of China, Qingdao, Shandong, 266100, China.
Key Laboratory of Marine Chemistry Theory and Technology (Ministry of Education), College of Chemistry & Chemical Engineering, Ocean University of China, Qingdao, Shandong, 266100, China.
J Hazard Mater. 2020 Nov 15;399:122939. doi: 10.1016/j.jhazmat.2020.122939. Epub 2020 May 30.
Bismuth-based semiconductors (BBS) are a group of promising candidates applied to visible light-induced photocatalysis. With deep positions of valence bands (2.34-4.04 eV), BBS exhibited excellent activity in oxidation processes. Fundamental studies on the reactive oxidation species primarily focused on TiO under ultraviolet, and it was recognized that OH radicals were effective reactive oxidative species in photocatalytic oxidation processes. This verdict may not be applicable for all other photocatalytic systems. In this study, the reactive oxidation species for BBS in the photocatalytic decomposition of phenol were explored. BBS were prepared with Hierarchical structures and high crystallinity. It was found that OH radicals and superoxide radicals were negligibly produced in most BBS photocatalytic systems. Instead, separated holes on the valence band may directly react with adsorbed species including organics, and acted as the primary ROS. One of the possible explanations of this phenomenon may be due to the shorter lifetime of photogenerated charge carriers on most BBS (212.3-415.7 ms) compared to that of TiO (1193.8 ms). Photocatalytic reaction pathways of degradation of phenol were also different between BBS and TiO, which were proposed. This work shed light on the significance of addressing and clarifying the reactive oxidation species in BBS photocatalysis.
铋基半导体(BBS)是一类在可见光诱导光催化中应用广泛的有前途的候选材料。由于具有较深的价带位置(2.34-4.04 eV),BBS 在氧化过程中表现出优异的活性。对 TiO 光催化剂在紫外光下的反应性氧化物种的基础研究最为深入,人们普遍认为 OH 自由基是光催化氧化过程中的有效反应性氧化物种。然而,这一结论可能并不适用于所有其他光催化体系。在本研究中,我们探索了 BBS 在光催化分解苯酚过程中的反应性氧化物种。我们采用分级结构和高结晶度的方法制备了 BBS。结果发现,在大多数 BBS 光催化体系中,OH 自由基和超氧自由基的生成可以忽略不计。相反,价带上的分离空穴可能直接与吸附物质(包括有机物)反应,并充当主要的 ROS。这种现象的一种可能解释可能是由于大多数 BBS(212.3-415.7 ms)的光生载流子寿命比 TiO(1193.8 ms)短。我们还提出了 BBS 和 TiO 在苯酚降解光催化反应途径上的差异。这项工作阐明了在 BBS 光催化中确定和阐明反应性氧化物种的重要性。