Designing novel MgFe2O4 coupled V2O5 nanorod for synergetic photodegradation of tetracycline with enhanced visible-light energy harvesting: Photoluminescence, kinetics, intrinsic mechanism and bactericidal effect

纳米棒 光降解 光催化 光致发光 可见光谱 材料科学 X射线光电子能谱 光化学 化学工程 扫描电子显微镜 降级(电信) 纳米颗粒 四环素 纳米复合材料 带隙 化学 核化学 纳米技术 催化作用 光电子学 有机化学 复合材料 电信 生物化学 抗生素 计算机科学 工程类
作者
B. Janani,Mohammad K. Okla,Saud S. Al-amri,Asmaa Mohebaldin,Yasmeen A. Alwasel,Hamada AbdElgawad,Mostafa A. Abdel-Maksoud,Ajith M. Thomas,Lija L. Raju,S. Sudheer Khan
出处
期刊:Chemosphere [Elsevier BV]
卷期号:296: 134012-134012 被引量:34
标识
DOI:10.1016/j.chemosphere.2022.134012
摘要

The present study focused on the enhancement of degradation of an important pharmaceutical pollutant, tetracycline with the help of nano photocatalyst under visible light irradiation. The study found that the synergetic effect of novel MgFe2O4-V2O5 enhanced the photocatalytic degradation of tetracycline. Here, the photocatalyst was synthesized by sonochemical technique. Scanning electron microscopy image indicates the coupling of MgFe2O4 nanocapsules on the surface of the V2O5 nanorod. The bandgap of MgFe2O4 (1.8 eV) and V2O5 (2.5 eV) was shifted to 2.32 eV in MgFe2O4-V2O5 to promote visible-light harvesting and it was depicted by the UV-visible DRS. XPS was used to identify the presence of chemical states with the existence of Mg 1s, Fe 2p, V 2p, and O 1s. The electrochemical impedance spectroscopy and photoluminescence spectra indicate the better separation of charge carriers owing to the formation of type II heterojunction formation. The tetracycline (25 mg/L) was degraded with MgFe2O4-V2O5 (150 mg/L) that exhibited 3.3 and 5 folds enhanced rates than its counterparts (MgFe2O4 and V2O5) owing to synergism. The possible intermediate formation and degradation pathway was determined based on GC/MS analysis. TOC analysis of end products indicated maximum mineralization of tetracycline. The MgFe2O4-V2O5 showed excellent recycling ability and reusability. The key photo-degradation of tetracycline was occurred by the generation of hydroxyl radicals. The MgFe2O4-V2O5 exhibited high antibacterial activity that ensures the dual functionality of the prepared nanocomposites (NCs). Therefore, the present study displays MgFe2O4 decorated V2O5 nanorod as an ideal candidate for environmental remediation.
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