Nanoengineering of ultrathin N-CQDs/Bi2WO6 S-scheme heterojunction for enhanced photodegradation of antibiotics as emerging contaminants: Mechanism insight and toxicity assessment

IF 8.1 1区 工程技术 Q1 ENGINEERING, CHEMICAL Separation and Purification Technology Pub Date : 2025-01-22 DOI:10.1016/j.seppur.2025.131717
Haitao Ren, Shuochen Wang, Abdelkader Labidi, Bao Pan, Jianmin Luo, Chuanyi Wang
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Abstract

Constructing low-cost and wide visible light response S-scheme heterojunctions is crucial for their photocatalytic efficiency and practical applications. Herein, a novel N-CQDs/UBWO composite was designed by combining nitrogen-doped carbon quantum dots (N-CQDs) obtained from bio-waste lignin with Bi2WO6 ultrathin nanosheets (UBWO) using in-situ hydrothermal approach. The work function analyses, electron paramagnetic resonance (EPR) and in-situ X-ray photoelectron spectroscopy (XPS) evidenced an S-scheme charge transfer mechanism between N-CQD and UBWO during photocatalytic reactions, which endows the composite system a high photocatalytic redox and charge space separation capabilities. Besides, the up-conversion properties of N-CQDs render N-CQDs/UBWO composites an enhanced visible light response. Therefore, the optimized 3 wt%N-CQD/UBWO S-scheme heterojunction exhibited favorable tetracycline degradation performance, with a degradation efficiency of 85.0 % within 40 min of reaction time, and first-order rate constant (k) of 2.6 and 20.3 times greater than that of UBWO and N-CQDs, respectively. Furthermore, referring to Fukui function calculations and liquid chromatography-mass spectrometry (LC-MS), degraded products and three degradation routes for tetracycline were proposed. The results of the toxicity estimation software tool (T.E.S.T) and mung bean cultivation demonstrated that the intermediate products of tetracycline degradation are of low toxicity. This study provides insights into designing superior S-scheme heterojunctions using CQDs derived from waste biomass for green and efficient removal of antibiotics from wastewater.
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超薄N-CQDs/Bi2WO6 S-scheme异质结纳米工程用于增强抗生素光降解:机制洞察和毒性评估
构建低成本、宽可见光响应的s型异质结是提高其光催化效率和实际应用的关键。本文采用原位水热法将从生物废弃物木质素中获得的氮掺杂碳量子点(N-CQDs)与Bi2WO6超薄纳米片(UBWO)结合,设计了一种新型的N-CQDs/UBWO复合材料。通过功函数分析、电子顺磁共振(EPR)和原位x射线光电子能谱(XPS)分析,证明了N-CQD与UBWO在光催化反应过程中存在S-scheme电荷转移机制,使复合体系具有较高的光催化氧化还原和电荷空间分离能力。此外,N-CQDs的上转换特性使得N-CQDs/UBWO复合材料具有增强的可见光响应。因此,优化后的3 wt%N-CQD/UBWO S-scheme异质结具有良好的四环素降解性能,在40 min的反应时间内,降解效率为85.0% %,一级速率常数(k)分别是UBWO和N-CQDs的2.6倍和20.3倍。结合福井函数计算和液相色谱-质谱(LC-MS)分析,提出了四环素的降解产物和3种降解途径。毒性评价软件(T.E.S.T)和绿豆栽培结果表明,四环素降解的中间产物毒性较低。该研究为利用废弃生物质衍生的CQDs设计优质的s方案异质结,以绿色高效地去除废水中的抗生素提供了见解。
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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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