Long Yang, Wang Yi, Zhang Dun, Ju Peng, Sun Yan
Key Laboratory of Marine Environmental Corrosion and Bio-fouling, Institute of Oceanology, Chinese Academy of Sciences, 7 Nanhai Road, Qingdao 266071, China; University of Chinese Academy of Sciences, 19 (Jia) Yuquan Road, Beijing 100039, China.
Key Laboratory of Marine Environmental Corrosion and Bio-fouling, Institute of Oceanology, Chinese Academy of Sciences, 7 Nanhai Road, Qingdao 266071, China.
J Colloid Interface Sci. 2016 Nov 1;481:47-56. doi: 10.1016/j.jcis.2016.07.041. Epub 2016 Jul 19.
Novel BiOI hierarchical nanostructures with porous architecture was prepared at room temperature by an economical, facile and rapid route. The coupling adsorption and degradation efficiency of rhodamine B (RhB), methylene blue (MB), and methyl orange (MO) could achieve 98.7%, 43.2%, 76.9% within 180min in the presence of BiOI, respectively. BiOI hierarchical nanostructures also exhibit excellent effective biocidal performances, and the disinfection rate of the typical biofouling bacteria Bacillus sp. and Pseudoalteromonas sp. could reach 99.9% and 99.8% in 60min, respectively. The circulate photocatalytic degradation of RhB experiment verified the good stability and reusability of BiOI hierarchical nanostructures. Based on active specie trapping experiments, the superoxide radicals (O2(-)) and holes (h(+)) were proved to be the main reactive species in the BiOI-based system. The obviously enhanced coupling adsorption and photocatalytic degradation performance of BiOI hierarchical nanostructures could be mainly attributed to the large surface area (64.5m(2)/g), negatively charged surface and the intrinsic electron structure. This study provides a new strategy to develop novel photocatalysts for water treatment and marine antifouling.
通过一种经济、简便且快速的方法在室温下制备了具有多孔结构的新型BiOI分级纳米结构。在BiOI存在的情况下,罗丹明B(RhB)、亚甲基蓝(MB)和甲基橙(MO)的耦合吸附和降解效率在180分钟内分别可达98.7%、43.2%、76.9%。BiOI分级纳米结构还表现出优异的有效杀菌性能,典型的生物污损细菌芽孢杆菌属和假交替单胞菌属的消毒率在60分钟内分别可达99.9%和99.8%。RhB的循环光催化降解实验验证了BiOI分级纳米结构具有良好的稳定性和可重复使用性。基于活性物种捕获实验,超氧自由基(O2(-))和空穴(h(+))被证明是基于BiOI体系中的主要反应物种。BiOI分级纳米结构耦合吸附和光催化降解性能的显著增强主要归因于其大表面积(64.5m(2)/g)、带负电的表面和固有的电子结构。该研究为开发用于水处理和海洋防污的新型光催化剂提供了一种新策略。