Novel 2D/3D Z-scheme heterojunction with Bi12O15Cl6 nanoplates anchored on MIL-53 (Fe) derived Fe2O3@C micro-rods for enhanced visible-light-mediated photocatalytic degradation of fluoroquinolones in wastewater

IF 8.1 1区 工程技术 Q1 ENGINEERING, CHEMICAL
Adarsh Singh , Amit Bhatnagar , Ashok Kumar Gupta
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引用次数: 0

Abstract

Antibiotics, ubiquitous in environmental matrices, evade conventional wastewater treatment systems, posing a threat to humans and aquatic biota. In this context, a novel 2D/3D Z-scheme Bi12O15Cl6/Fe2O3@C (BFC) heterojunction photocatalyst was prepared by anchoring Bi12O15Cl6 nanoplates on perforated Fe2O3@C micro-rods via solvothermal route followed by calcination. The carbon framework surrounding Fe2O3 led to the partial surface metallization of Bi12O15Cl6 nanoplates, which proved beneficial for photoinduced charge separation. The treatment efficacy of the as-prepared materials was assessed by degrading a mixture of fluoroquinolone-based antibiotics (levofloxacin (LEV) and ciprofloxacin (CIP)) under visible light. Under optimal conditions, the degradation efficiencies of the photocatalyst for LEV and CIP reached around 96% and 91%, respectively, after 120 min. This could be related to the decreased recombination rate of photoinduced charge carriers and their enhanced separation efficacy. In addition, OH radicals were determined to be the principal reactive species supporting photocatalytic degradation of LEV and CIP, followed by O2·- and h+. The BFC photocatalyst demonstrated exceptional chemical stability, non-toxicity, and sustained photocatalytic activity across multiple cycles of reuse. Furthermore, the colony forming unit (CFU) assay performed on E. coli, along with the in silico toxicity prediction of transformation products (TPs), showed that the treated effluent and TPs exhibited lower toxicity compared to the parent compounds, respectively.

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来源期刊
Separation and Purification Technology
Separation and Purification Technology 工程技术-工程:化工
CiteScore
14.00
自引率
12.80%
发文量
2347
审稿时长
43 days
期刊介绍: Separation and Purification Technology is a premier journal committed to sharing innovative methods for separation and purification in chemical and environmental engineering, encompassing both homogeneous solutions and heterogeneous mixtures. Our scope includes the separation and/or purification of liquids, vapors, and gases, as well as carbon capture and separation techniques. However, it's important to note that methods solely intended for analytical purposes are not within the scope of the journal. Additionally, disciplines such as soil science, polymer science, and metallurgy fall outside the purview of Separation and Purification Technology. Join us in advancing the field of separation and purification methods for sustainable solutions in chemical and environmental engineering.
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