Improved photocatalytic activity of rGO modified Mn(VO3)2 nanorods for the degradation of rifampicin: Insight into mechanism, pathway and by-product toxicity evaluation

IF 5.5 3区 工程技术 Q1 ENGINEERING, CHEMICAL Journal of the Taiwan Institute of Chemical Engineers Pub Date : 2024-08-19 DOI:10.1016/j.jtice.2024.105692
V. Subhiksha , L. Sruthi , J.P. Steffy , Asad Syed , Abdallah M. Elgorban , Islem Abid , Ling Shing Wong , S. Sudheer Khan
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Abstract

Background

The discharge of rifampicin into surface and groundwaters leads to the emergence of antibiotic resistant bacteria which could possess a detrimental threat to human health and aquatic life.

Methods

In this work, rod shaped Mn(VO3)2 was synthesised by simple co-precipitation method and it was deposited over rGO to enhance the photocatalytic degradation of rifampicin under visible light irradiation.

Findings

The study highlighted the enhanced photocatalytic degradation of rifampicin (RFP) by rGO/Mn(VO3)2 nanocomposites (NCs) and it was 99.2 % at pH 7 and the photocatalyst was stable even after 6th cycle. The total organic carbon removal was determined to be 97.1 %. To achieve this, rod shaped Mn(VO3)2 was prepared and deposited over rGO and it was confirmed by SEM and TEM analysis. While XRD studies confirmed the purity of the synthesized materials, XPS and Raman spectroscopy validated their chemical states and bonding nature respectively. BET and BHJ revealed the enhanced surface area and mesoporous nature of the NCs. Further, PL studies indicated the reduced charge carrier recombination in the NCs. The dominant radicals involved in the degradation was identified to be O2•− and OH. The degraded intermediates were identified and the possible degradation pathway was proposed by using GC–MS/MS analysis. The by-product toxicity was assessed by ECOSAR program and were found to be non-toxic to algae, Daphnia and fish. The study demonstrates the promising potential of rGO/Mn(VO3)2 NCs with improved behaviour and stability for environmental application.

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提高 rGO 修饰的 Mn(VO3)2 纳米棒降解利福平的光催化活性:对机理、途径和副产品毒性评估的深入研究
背景利福平排入地表水和地下水会导致抗生素耐药菌的出现,从而对人类健康和水生生物造成有害威胁。方法本研究采用简单的共沉淀法合成了棒状的 Mn(VO3)2,并将其沉积在 rGO 上,以增强其在可见光照射下对利福平的光催化降解。研究结果该研究强调了 rGO/Mn(VO3)2 纳米复合材料(NCs)对利福平(RFP)光催化降解的增强作用,在 pH 值为 7 时,光催化剂的光催化降解率为 99.2%,即使在第 6 个循环后也很稳定。有机碳的总去除率为 97.1%。为此,制备了棒状 Mn(VO3)2 并沉积在 rGO 上,并通过 SEM 和 TEM 分析证实了这一点。XRD 研究证实了合成材料的纯度,XPS 和拉曼光谱分别验证了它们的化学状态和键合性质。BET 和 BHJ 显示,NCs 的比表面积增大,具有介孔性质。此外,PL 研究表明,NC 中的电荷载流子重组减少。降解过程中的主要自由基是 O2 和 -OH。通过 GC-MS/MS 分析,确定了降解的中间产物,并提出了可能的降解途径。通过 ECOSAR 程序评估了副产品的毒性,发现其对藻类、水蚤和鱼类无毒。这项研究表明,rGO/Mn(VO3)2 NCs 在环境应用方面具有良好的性能和稳定性,具有广阔的发展前景。
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来源期刊
CiteScore
9.10
自引率
14.00%
发文量
362
审稿时长
35 days
期刊介绍: Journal of the Taiwan Institute of Chemical Engineers (formerly known as Journal of the Chinese Institute of Chemical Engineers) publishes original works, from fundamental principles to practical applications, in the broad field of chemical engineering with special focus on three aspects: Chemical and Biomolecular Science and Technology, Energy and Environmental Science and Technology, and Materials Science and Technology. Authors should choose for their manuscript an appropriate aspect section and a few related classifications when submitting to the journal online.
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