Decoration of 0D Bi3NbO7 nanoparticles onto 2D BiOIO3 nanosheets as visible-light responsive S-scheme photocatalyst for photo-oxidation of antibiotics in wastewater

被引:32
作者
Graimed, Bassim H. [1 ]
Jabbar, Zaid H. [2 ]
Alsunbuli, Maye M. [3 ]
Ammar, Saad H. [4 ,5 ]
Taher, Athraa G. [6 ]
机构
[1] Univ Baghdad, Coll Engn, Environm Engn Dept, Baghdad, Iraq
[2] Al Mustaqbal Univ Coll, Bldg & Construct Tech Engn Dept, Babylon 51001, Iraq
[3] Univ Baghdad, Coll Engn, Architecture Engn Dept, Baghdad, Iraq
[4] Al Nahrain Univ, Coll Engn, Dept Chem Engn, Baghdad, Iraq
[5] Univ Warith Al Anbiyaa, Coll Engn, Karbala, Iraq
[6] Oil Pipelines Co, Minist Oil, Baghdad, Iraq
关键词
BiOIO; 3; /Bi; NbO; 7; nanocomposite; Photocatalytic degradation; Amoxicillin antibiotics; S -scheme mechanism; Sunlight irradiation; Effect of environmental factors; AQUEOUS-SOLUTIONS; DEGRADATION; AMOXICILLIN;
D O I
10.1016/j.envres.2023.117854
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
In this work, a new S-type hybrid composed of 2D BiOIO3 and 0D Bi3NbO7 was proposed and hybridized by a facile self-assembly strategy. The developed nanomaterials were characterized and identified by a series of so-phisticated analyses, like XRD, SEM, EIS, XPS, PL, UPS, EDS, BET, M-S, TEM, HRTEM, and DRS. The photo -catalytic behavior of BiOIO3/Bi3NbO7 was examined and optimized against amoxicillin (AMX) and other types of antibiotics under a variety of environmental conditions, such as visible light (150 W LED), direct sunlight, pH (3-11), catalyst dosages (20-80 mg), humic acid (0-24 mg/L), AMX concentration (10-40 mg/L), and different inorganic ions (0.05 M). The optimized BiOIO3/Bi3NbO7 hybrid attained exceptional AMX degradation activity (96.5%) under visible light (60 min), with a reaction constant of up to 0.04559 min-1, exceeding bare BiOIO3 and Bi3NbO7 by 5.57 and 5.3 folds, respectively. The obtained BiOIO3/Bi3NbO7 hybrid unclosed expanded light utilization behavior compared with neat catalysts, which originates from the powerful incorporation between BiOIO3 and Bi3NbO7 in the S-type system. The radical investigations confirmed the superiority of BiOIO3/ Bi3NbO7 in generating both center dot OH and center dot O2 � during the photoreaction. The novel Bi3NbO7-based heterojunction afforded robust photostability in five treatment cycles and simple charge transfer activity in the S-type route, boosting the photo-mechanism for antibiotic degradation in an efficient manner. The building of the S-scheme heterojunction between BiOIO3 and Bi3NbO7 stimulates the utilization of holes by the recombination process and promotes the overall stability of the composite. Our study introduces a new class of semiconductor hetero-junctions that may contribute to the development potential of the photocatalysis sector in wastewater treatment.
引用
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页数:17
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