Research Progress on the Degradation of Organic Pollutants in Wastewater via Ultrasound/Periodate Systems: A Review
Abstract
:1. Introduction
2. Reaction Mechanism of US/PI System for Degradation of Organic Pollutants in Wastewater
2.1. The Formation Mechanism of Oxidative Free Radicals in US/PI System
2.2. Degradation Mechanisms of Different Organic Compounds in the US/PI System
3. Key Determinants of the US/PI System Is Performance
3.1. Ultrasonic Power Intensity
3.2. PI concentration Levels
3.3. Temperature
3.4. Solution pH Value
3.5. Presence of Concurrent Inorganic Ions
3.6. Dissolved Organic Matter
3.7. Others
4. Efficacy of Organic Compound Degradation under the US/PI System
5. Concluding Remarks and Future Perspectives
- (a)
- It is advisable to employ innovative experimental designs and precise instrumentation, such as experimental segmentation and variable control, to differentiate and accurately quantify the contributions of thermal decomposition processes and free radical reactions. Concurrently, there is an urgent need to develop new technological approaches for the direct identification of various free radicals within the US/PI system, such as employing electron spin resonance (ESR) spectroscopy. Furthermore, these advancements will enable a comprehensive elucidation of the mechanisms by which free radicals degrade organic pollutants.
- (b)
- Although mineralization levels can initially be gauged using Total Organic Carbon (TOC) and Chemical Oxygen Demand (COD), the toxicity of intermediates produced during degradation processes holds significant importance. The discernible scarcity of research focusing on biotoxicity and bioindicators like Biochemical Oxygen Demand (BOD) heralds significant opportunities for future investigations.
- (c)
- The degradation of organic pollutants via the US/PI system involves an inherently intricate and multifaceted mechanism. While this manuscript has delved into aspects of free radical oxidation and ultrasonic pyrolysis, numerous unexplored facets remain, necessitating systematic investigation through further experimental research.
- (d)
- While the US/PI system has demonstrated superior efficacy in the degradation of organic pollutants relative to traditional methodologies, its elevated economic cost remains a significant impediment to widespread adoption. Consequently, identifying strategies to mitigate costs while preserving the system’s high efficiency constitutes a crucial research trajectory for the advancement of US/PI technologies.
- (e)
- Currently, the application of the US/PI system is constrained by operating conditions, including ultrasound frequency and intensity, as well as PI concentration. Future research should explore optimizing these conditions to maximize degradation efficiency, while also considering the balance between cost and energy consumption.
- (f)
- The majority of research on the degradation of organic pollutants in wastewater using the US/PI system remains at the laboratory stage. Future research should investigate scaling up the US/PI system for industrial applications, including treating complex combinations of organic pollutants in real-world wastewater scenarios and assessing the system’s stability and sustainability.
- (g)
- When employing the US/PI system for wastewater treatment, it is crucial to evaluate the by-products generated during the reaction and their potential environmental impacts. Future research should encompass the identification, quantification, and toxicological evaluation of these by-products.
- (h)
- Future research should investigate integrating the US/PI system with other wastewater treatment methodologies, such as biological treatment and adsorption, to enhance treatment efficacy and cost-efficiency. This integrated approach could potentially be more effective in treating recalcitrant or highly concentrated organic pollutants.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Technologies | Advantages | Disadvantages | References |
---|---|---|---|
US/PI oxidation method | Efficient degradation of pollutants; rapid reaction kinetics; outstanding environmental compatibility; wide applicability; straightforward operation. | Substantial energy consumption; significant equipment expenditure. | [22] |
Photochemical catalytic oxidation method | Lighting is sustainable and eco-friendly; exerts minimal impact on water quality; characterized by low operating costs; boasts a long service life | Optimization is required for its integration with other advanced technologies such as UV/H2O2 and UV/PDS; the UV radiation from built-in light tubes poses health risks to humans. | [23] |
Electrochemical oxidation process | The electrolysis device is streamlined, user-friendly, and offers straightforward control, with an anode that efficiently oxidizes pollutants. Altering the anode material enables the targeted degradation of various organic compounds. | The energy consumption is excessively high, the reactor exhibits suboptimal efficiency, and the associated equipment costs are considerable. | [24] |
Ozone technology | Fast oxidation speed and high oxidation efficiency. | The equipment configuration is intricate and characterized by high energy demands accompanied by significant financial outlays. | [9] |
Contaminant | Degradation Products | Key Mechanism | End Products | References |
---|---|---|---|---|
Perfluorooctanoic acid |
Perfluoroolefins. 1 h-perfluoroalkanes | Cleavage of C–C and C–F bonds in perfluoroanions; ultrasonic pyrolysis occurring at or near the bubble interface; oxidation of PFOA via electron transfer mediated by IO3• radicals. | CO, CO2, HF, etc. | [34] |
Acid Blue 92 |
1,2-Benzenedicarboxylic acid 1-Hydroxycyclohexane-1-carboxylic acid Aniline; acetic acid; formamide |
Dyes undergo degradation through the cleavage of N≡N, C-C, C-S, and C-N bonds. Hydroxyl and amino groups attached to the benzene ring undergo oxidation. The aromatic ring undergoes opening, leading to the formation of the final product. | CO2, H2O, etc. | [35] |
landfill leachate |
Cyclohexylsiloxane Cyclotridecane Phenol | IO3•, IO4• and • OH radicals oxidize litter permeability, forming intermediates that are finally broken down into CO2 and H2O. | CO2, H2O, etc. | [36] |
acid orange 7 |
1,3-Biphenyl Acetic acid 2-propionic acid Methyl ethyl Cyclohexene Ethylbenzene Trimethyl | Cleavage of the C–N bond in heterocyclic compounds; extraction of hydrogen atoms. oxidation of methyl groups; nitro group hydrolysis on aromatic rings; oxidation of hydroxyl groups and phenolic compounds; internal ultrasound-assisted pyrolysis. |
NH3, SO2 CO2, H2O, etc. | [37] |
industrial wastewater (TAAs) | Trimethylaniline, aniline, o-toluidine, o-aminoaniline, xylene, ethylbenzene, and duran | Cleavage of azo groups, as well as methyl, ethyl, and C-H-O bonds; ultrasound-assisted internal pyrolysis; oxidation of hydroxyl and amino groups on benzene rings; oxidation and decarboxylation of methyl groups, accompanied by hydrogen extraction; hydrolysis of aromatic rings. | NH3, CO2, etc. | [38] |
Analytes | Selected pH Range | Optimal pH | Proposal Reactions | References |
---|---|---|---|---|
Perfluorooctanoic acid | 3.9, 7, 10.1 | 3.9 | [34] | |
Brilliant Blue R | 2, 5.2, 8 | 8 | [40] | |
Bisphenol A | 6, 7, 8.5 | 8.5 | [24] | |
Phenol | 3, 7, 11 | 3 | [46] | |
Garbage permeate | 3, 5, 7, 9, 11 | 3 | [36] |
Contaminant |
Ultrasound Properties |
PI Concentration |
US Removal Efficiency
(%) |
PI Removal Efficiency
(%) | US/PI Removal/TOC Efficiency (%) | References |
---|---|---|---|---|---|---|
Perfluorooctanoic acid (170.1 μmol/L) |
P:120 W f:40 kHz | 45 mmol/L | 2 h/26.2 | 2 h/2 | 2 h/96.5/95.7 | [34] |
Brilliant Blue R (5 mg/L) |
P:80 W f:300 kHz | 10 mmol/L | 140 min/100 | 60 min/0 | 60 min/100/100 | [40] |
Acid Blue 92 Dye (10 mg/L) |
P:150 W f:36 kHz | 0.15 mol/L | 150 min/46 | none | 150 min/98/none | [35] |
Tetracycline (50 mg/L) |
P:256 W f:37 kHz | 0.01 mol/L | 45 min/12.8 | none | 45 min/94.2/77.9 | [66] |
Orange 7 Acid (50 mg/L) |
P:150 W/L f:36 kHz | 2 mmol/L | 105 min/27.5 | 60 min/0 | 90 min/96/none | [37] |
Industrial wastewater (2880 mg/L) |
P:100 W f:37 kHz | 0.11 mol/L | 120 min/18.43 | none | 120 min/98/79 | [45] |
Ramazol Black B (100 mg/L) |
P:500 W f:60 kHz | 10 mg/L | 100 min/34.7 | none | 100 min/98.7/none | [48] |
Aromatic amine (1990 mg/L) |
P:500 W f:35 kHz | 16 mg/L | 150 min/79 | none | 150 min/99/96 | [38] |
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Song, T.; Wang, Z.; Jiang, Y.; Yang, S.; Deng, Q. Research Progress on the Degradation of Organic Pollutants in Wastewater via Ultrasound/Periodate Systems: A Review. Molecules 2024, 29, 2562. https://doi.org/10.3390/molecules29112562
Song T, Wang Z, Jiang Y, Yang S, Deng Q. Research Progress on the Degradation of Organic Pollutants in Wastewater via Ultrasound/Periodate Systems: A Review. Molecules. 2024; 29(11):2562. https://doi.org/10.3390/molecules29112562
Chicago/Turabian StyleSong, Tiehong, Zhe Wang, Yi Jiang, Shenggang Yang, and Qiyuan Deng. 2024. "Research Progress on the Degradation of Organic Pollutants in Wastewater via Ultrasound/Periodate Systems: A Review" Molecules 29, no. 11: 2562. https://doi.org/10.3390/molecules29112562
APA StyleSong, T., Wang, Z., Jiang, Y., Yang, S., & Deng, Q. (2024). Research Progress on the Degradation of Organic Pollutants in Wastewater via Ultrasound/Periodate Systems: A Review. Molecules, 29(11), 2562. https://doi.org/10.3390/molecules29112562