Remediation of Surfactants Used by VUV/O3 Techniques: Degradation Efficiency, Pathway and Toxicological Analysis
Abstract
:1. Introduction
2. Results and Discussion
2.1. Degradation Rule of SDBS during Various Treatments
2.2. Types and Roles of Radicals Existing in VUV/O3 Process
2.3. Impacts of Varied Environmental Factors
2.3.1. Impacts of Varied Initial O3 Concentrations on VUV/O3
2.3.2. Impacts of Varied Initial SDBS Concentrations on VUV/O3
2.3.3. Performance of VUV/O3 in Varied Initial pH
2.3.4. Implications of Typical Anions on SDBS Degradation
2.4. Proposed Degradation Pathways of SDBS
2.5. Toxicological Analysis of Intermediates
2.6. Application of VUV/O3 for Real Laundry Wastewater Treatment
3. Materials and Methods
3.1. Chemicals
3.2. Experimental Procedures
3.3. Analytical Methods
4. Conclusions
- (1)
- VUV-activated O3 resulted in a synergistic effect and enhanced the oxidative effect of O3. VUV/O3 could convert SDBS to inorganic more efficiently, and DOCt/DOC0 dropped to 50.37% after 30 min treatment. With VUV alone and O3 alone, they only reached 10.63% and 29.60%. Advanced oxidation was effective to cleavage the S-O bond of SDBS, and the final concentrations of SO42− increased fastest in the VUV/O3 process.
- (2)
- VUV/O3 promoted the production of HO• compared to VUV alone and O3 alone, which was the major reactive species attacking SDBS molecules.
- (3)
- The performance of VUV/O3 was optimal at pH 9, with lower oxidation efficiency at more acidic levels. The addition of SO42− hardly affected the degradation of SDBS and that of Cl− and HCO3− slightly reduced the reaction rate, except that adding NO3− had a remarkable inhibitory effect on the process.
- (4)
- There were three isomers in SDBS, and the degradation modes of the three SDBS isomers as three pathways were very comparable. The degradation by-products of the VUV/O3 process decrease in harmfulness and toxicity compared to the SDBS parent.
- (5)
- VUV/O3 could effectively remove anionic surfactants from laundry wastewater. The removal efficiency of anionic surfactants in laundry wastewater was identified to be less than that depicted above in pure water.
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Sample Availability
References
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Li, H.; Yang, Y.; Li, X.; Ullah, H. Remediation of Surfactants Used by VUV/O3 Techniques: Degradation Efficiency, Pathway and Toxicological Analysis. Molecules 2023, 28, 3312. https://doi.org/10.3390/molecules28083312
Li H, Yang Y, Li X, Ullah H. Remediation of Surfactants Used by VUV/O3 Techniques: Degradation Efficiency, Pathway and Toxicological Analysis. Molecules. 2023; 28(8):3312. https://doi.org/10.3390/molecules28083312
Chicago/Turabian StyleLi, Hang, Yanling Yang, Xing Li, and Habib Ullah. 2023. "Remediation of Surfactants Used by VUV/O3 Techniques: Degradation Efficiency, Pathway and Toxicological Analysis" Molecules 28, no. 8: 3312. https://doi.org/10.3390/molecules28083312
APA StyleLi, H., Yang, Y., Li, X., & Ullah, H. (2023). Remediation of Surfactants Used by VUV/O3 Techniques: Degradation Efficiency, Pathway and Toxicological Analysis. Molecules, 28(8), 3312. https://doi.org/10.3390/molecules28083312