Plasma-microbubble treatment and sustainable agriculture application of diclofenac-contaminated wastewater

Liu, Qi, Ouyang, Wenchong, Yang, Xusheng, He, Yuanyuan, Wu, Zhengwei, & (2023) Plasma-microbubble treatment and sustainable agriculture application of diclofenac-contaminated wastewater. Chemosphere, 334, Article number: 138998.

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Description

The demand for efficient wastewater treatment is becoming increasingly urgent due to the rising threat of pharmaceutical residues in water. As a sustainable advanced oxidation process, cold plasma technology is a promising approach for water treatment. However, the adoption of the technology encounters several challenges, including the low treatment efficiency and the potentially unknown environmental impact. Here, microbubble generation was integrated with cold plasma system to enhance treatment of wastewater contaminated with diclofenac (DCF). The degradation efficiency depended on the discharge voltage, gas flow, initial concentration, and pH value. The best degradation efficiency was 90.9% after 45 min plasma-bubble treatment under the optimum process parameters. The hybrid plasma-bubble system exhibited strongly synergistic performance heralded by up to seven-times higher DCF removal rates than the two systems operated separately. The plasma-bubble treatment remains effective even after addition of SO42−, Cl, CO32−, HCO3, and humic acid (HA) as interfering background substances. The contributions of •O2, O3, •OH, and H2O2 reactive species to the DCF degradation process were specified. The synergistic mechanisms for DCF degradation were deduced through the analysis of the degradation intermediates. Further, the plasma-bubble treated water was proven safe and effective to stimulate seed germination and plant growth for sustainable agriculture applications. Overall, these findings provide new insights and a feasible approach with a highly synergistic removal effect for the plasma-enhanced microbubble wastewater treatment, without generating secondary contaminants.

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ID Code: 240673
Item Type: Contribution to Journal (Journal Article)
Refereed: Yes
ORCID iD:
Ostrikov, Kostya (Ken)orcid.org/0000-0001-8672-9297
Additional Information: Funding Information: This work was supported by the ITER Project of the Ministry of Science and Technology ( 2022YFE03080001 ) and the Funding for Joint Laboratory of Plasma Application Technology Funding ( JL06120001H ).
Measurements or Duration: 11 pages
Keywords: Cold plasma, Diclofenac degradation, Microbubbles, Synergistic effect, Wastewater Treatment
DOI: 10.1016/j.chemosphere.2023.138998
ISSN: 0045-6535
Pure ID: 137814918
Divisions: Current > Research Centres > Centre for Materials Science
Current > Research Centres > Centre for a Waste Free World
Current > Research Centres > Centre for Clean Energy Technologies & Practices
Current > QUT Faculties and Divisions > Faculty of Science
Current > Schools > School of Chemistry & Physics
Funding Information: This work was supported by the ITER Project of the Ministry of Science and Technology ( 2022YFE03080001 ) and the Funding for Joint Laboratory of Plasma Application Technology Funding ( JL06120001H ).
Copyright Owner: 2023 Elsevier Ltd.
Copyright Statement: This work is covered by copyright. Unless the document is being made available under a Creative Commons Licence, you must assume that re-use is limited to personal use and that permission from the copyright owner must be obtained for all other uses. If the document is available under a Creative Commons License (or other specified license) then refer to the Licence for details of permitted re-use. It is a condition of access that users recognise and abide by the legal requirements associated with these rights. If you believe that this work infringes copyright please provide details by email to qut.copyright@qut.edu.au
Deposited On: 21 Jun 2023 03:12
Last Modified: 01 Jun 2024 13:45