Photocatalytic Evaluation of Ag2CO3 for Ethylparaben Degradation in Different Water Matrices
Abstract
:1. Introduction
2. Materials and Methods
2.1. Materials and Water Matrices
2.2. Photocatalyst Preparation
2.3. Photocatalyst Characterization
2.4. Photocatalytic Experiments
3. Results
3.1. Characterization
3.2. Photocatalytic Activity of Ag2CO3
3.3. Effect of Type of Irradiation
3.4. Effect of the Water Matrix
3.5. Effect of pH
3.6. Catalyst Reuse
3.7. Comparison with Different Advanced Oxidation AOPs
4. Conclusions
- Ag2CO3 shows substantial activity for EP degradation in UPW under both solar and visible light irradiation.
- Τhe presence of ions such as bicarbonates and chlorides in concentrations found in environmental samples improves performance.
- Of particular interest is that the presence of humic acid significantly increases the degradation of EP.
- As a result, Ag2CO3 retains its activity in more complex, environmentally relevant matrices, like secondary treated wastewater and bottled water.
- Ag2CO3 photocatalytic properties are similar with other photocatalytic systems studying organic dyes degradation under visible light irradiation with the use of Ag2CO3. Moreover, its activity is of the same order of magnitude as very promising photocatalytic materials such as CuOx/BiVO4 and g-C3N4.
- In terms of efficiency, the proposed system appears to be competitive with other energy-intensive processes such as electrochemical oxidation and heat-activated persulfate and further research is needed in this direction.
- Future research should move towards exploring the stability of Ag2CO3, in a continuous flow configuration, as well as examining environmental and low-cost methods of silver recovery.
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Photocatalyst | EP Concentration (mg/L) | Catalyst Concentration (mg/L) | Type of Irradiation | Time Period for Complete Degradation (min) | References |
---|---|---|---|---|---|
0.75(% wt.) CuOx/BiVO4 | 2 | 1000 | solar | 60 | [40] |
ZnO | 1 | 250 | solar | 20 | [41] |
TiO2(P25) | 1 | 250 | solar | 30 | [41] |
g-C3N4 | 13 | 1000 | visible | 20 | [3] |
AgCl/Ag3PO4 | 20 | 500 | visible | 40 | [42] |
Ag2CO3 | 0.5 | 750 | solar | 30 | [This work] |
System | EP Concentration (mg/L) | Time Period for Complete Degradation (min) | Experimental Parameters | References |
---|---|---|---|---|
Heat-activated/PS | 3 | 240 | [EP]:20 mM, pH: 7, 60 °C [persulfate]:1mM. | [43] |
UV-C/PS | 5 | 90 | [EP]:30 mM, [PS =PMS]:0.25-2.5 mM | [44] |
Electrochemical oxidation | 0.2 | 20 | [EP]:200 mg/L in 0.1 M Na2SO4,i:70 mA/cm2 | [45] |
Ag2CO3/solar irradiation | 0.5 | 30 | [catalyst]:750 mg/L, pH:6 | [This work] |
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Petala, A.; Nasiou, A.; Mantzavinos, D.; Frontistis, Z. Photocatalytic Evaluation of Ag2CO3 for Ethylparaben Degradation in Different Water Matrices. Water 2020, 12, 1180. https://doi.org/10.3390/w12041180
Petala A, Nasiou A, Mantzavinos D, Frontistis Z. Photocatalytic Evaluation of Ag2CO3 for Ethylparaben Degradation in Different Water Matrices. Water. 2020; 12(4):1180. https://doi.org/10.3390/w12041180
Chicago/Turabian StylePetala, Athanasia, Athanasia Nasiou, Dionissios Mantzavinos, and Zacharias Frontistis. 2020. "Photocatalytic Evaluation of Ag2CO3 for Ethylparaben Degradation in Different Water Matrices" Water 12, no. 4: 1180. https://doi.org/10.3390/w12041180
APA StylePetala, A., Nasiou, A., Mantzavinos, D., & Frontistis, Z. (2020). Photocatalytic Evaluation of Ag2CO3 for Ethylparaben Degradation in Different Water Matrices. Water, 12(4), 1180. https://doi.org/10.3390/w12041180