Hasanvandian Farzad, Shokri Ali, Moradi Mohsen, Kakavandi Babak, Rahman Setayesh Shahrbanoo
Department of chemical and Petroleum Engineering, Sharif University of Technology, Tehran, Iran.
Research Center for Health, Safety and Environment, Alborz University of Medical Sciences, Karaj, Iran; Department of Environmental Health Engineering, School of Health, Alborz University of Medical Sciences, Karaj, Iran.
J Hazard Mater. 2022 Feb 5;423(Pt B):127090. doi: 10.1016/j.jhazmat.2021.127090. Epub 2021 Sep 6.
In this study, spinel CuCoO (CCO) with a hierarchical hollow sphere morphology was encapsulated in VO-decorated ultra-wrinkled graphitic carbon-nitride (VO-UCN) for the first time via a facile glycerol-assisted solvothermal method in the interest of developing a novel high-efficiency double Z-type nano-photocatalyst (denoted as VO-UCN@CCO). The remarkable physicochemical features of the as-prepared nano-photocatalysts were verified using diverse characterization techniques including TGA, XRD, FT-IR, FE-SEM, TEM, BET, UV-vis DRS, PL, EIS, and transient photocurrent techniques. Herein, VO-UCN@CCO nanocomposite was employed for the photodisintegration of levofloxacin (LVOF) antibiotic under visible-light irradiation and the impact of certain operative reaction system variables was explored in an effort to optimize the photocatalytic capability. The 40% loading of CCO in VO-UCN@CCO nanocomposite was found to display maximum photocatalytic performance (about 95%) for LVOF photodecomposition, which was 9.3, 6.6, and 13.8 times greater when compared with pristine VO, UCN, and CCO, respectively. A high capability was observed for as-prepared photocatalyst during reusability tests and near 90% degradation efficiency was obtained in the sixth run. The complete mineralization of LVOF was achieved by the VO-UCN@CCO photocatalyst process after 300 min of reaction. An excellent synergy factor towards the degradation of LVOF was obtained for VO-UCN@CCO compared to each of its components alone. This peculiar design is envisaged to provide new inspirations for ameliorating the photocatalytic decontamination of tenacious and non-biodegradable species present in real wastewater.
在本研究中,首次通过简便的甘油辅助溶剂热法将具有分级中空球体形态的尖晶石CuCoO(CCO)封装在VO修饰的超皱石墨相氮化碳(VO-UCN)中,旨在开发一种新型高效双Z型纳米光催化剂(记为VO-UCN@CCO)。使用包括TGA、XRD、FT-IR、FE-SEM、TEM、BET、UV-vis DRS、PL、EIS和瞬态光电流技术在内的多种表征技术验证了所制备纳米光催化剂的显著物理化学特性。在此,VO-UCN@CCO纳米复合材料用于在可见光照射下光解左氧氟沙星(LVOF)抗生素,并探索了某些操作反应体系变量的影响,以优化光催化性能。发现VO-UCN@CCO纳米复合材料中40%的CCO负载量对LVOF光分解表现出最大光催化性能(约95%),分别比原始的VO、UCN和CCO高9.3倍、6.6倍和13.8倍。在可重复使用性测试中,所制备的光催化剂表现出高能力,第六次运行时降解效率接近90%。反应300分钟后,VO-UCN@CCO光催化剂过程实现了LVOF的完全矿化。与单独的各组分相比,VO-UCN@CCO对LVOF降解具有优异的协同因子。设想这种独特设计将为改善实际废水中存在的顽固和不可生物降解物质的光催化净化提供新的灵感。