S-Scheme 2D/2D Heterojunction of ZnTiO3 Nanosheets/Bi2WO6 Nanosheets with Enhanced Photoelectrocatalytic Activity for Phenol Wastewater under Visible Light
Abstract
1. Introduction
2. Results and Discussion
2.1. XRD Analysis
2.2. Morphology Analysis
2.3. XPS Analysis
2.4. Electrochemical Analysis
2.5. Photocatalytic Degradation of Phenolic Pollutants
Photocatalyst | Synthesis Methods | Initial Pollutant Conc. | Light Source | Degradation (%) | Ref. |
---|---|---|---|---|---|
Bi7O9I3/rGO | Solvothermal | 10 mg/L | 500 W Xe lamp (cutoff filter: λ > 420 nm) | 78.3 | [40] |
Au/BiOBr/graphene | Hydrothermal | 10 mg/L | 300 W xenon lamp (cutoff filter: λ > 400 nm) | 64 | [41] |
Silica nanosheets (SNSs)—supported mixed phase | Hydrothermal and post-annealing | 20 mg/L | 300 W Xe lamp with a cut-off filter | 90 | [42] |
GO/SmVO4 | Sonochemical | 1.0 × 10−4 mol dm−3 | 35 W LED lamp | 90 | [43] |
TiO2-x/g-C3N4 nanorod arrays | Urea drop-calcined and NaBH4 reduction | 5 ppm | 300 W Xe lamp | 87 | [44] |
g-CN@CuO | Calcination | 50 mg/L | 500 W Xe lamp with a cut-off filter | 87.8 | [45] |
ZnTiO3/Bi2WO6 | Hydrothermal | 10 mg/L | 350 xenon lamp (λ ≥ 400 nm) | 93 | This work |
2.6. Possible Photoelectrocatalytic Mechanism
3. Experiments
3.1. Materials
3.2. Preparation of Bi2WO6 and ZnTiO3
3.3. Preparation of ZnTiO3/Bi2WO6
3.4. Photoelectrocatalytic Degradation of Phenolic Pollutants
3.5. Electrochemical Analysis
3.6. Characterization
4. Conclusions
- In this paper, 2D/2D heterojunctions of ZnTiO3 nanosheets/Bi2WO6 nanosheets were prepared for the first time by combining a hydrothermal method and a two-step calcination method, and two types of phenolic pollutants were selected. The effects of photocatalysts on electron-absorbing and electron-donating phenolic pollutants were discussed. It was confirmed that the photocatalyst had an obvious degradation effect on the electron-donating phenolic pollutants. This was because the electron-donating group could accelerate the oxidation of the ortho hydroxyl, making the benzene ring easier to decompose.
- Compared with pure Bi2WO6 (25%), the degradation rate of phenol by the ZnTiO3/Bi2WO6 photocatalyst could reach 93%, and the kinetic rate was increased by 3.6 times. The main reasons for the performance improvement were as follows: (1) 2D/2D ZnTiO3/Bi2WO6 heterojunction shortened the charge-transfer path and reduced the resistance of photogenerated electrons and holes to the surface; (2) the S-scheme heterojunction mechanism was constructed at the ZnTiO3/Bi2WO6 interface, which maintained a higher oxidation potential and reduction potential and realized the spatial separation of photogenerated carriers; and (3) the photoelectric coupling effect of the applied electric field further promoted the separation of the photogenerated carrier and improved the active free radical·OH and·O2−. This work provides a new strategy for the degradation of phenolic wastewater.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Element | Weight % | Atomic % |
---|---|---|
O K | 46.25 | 90.12 |
Ti K | 2.16 | 1.41 |
Zn K | 1.30 | 0.62 |
W M | 17.20 | 2.92 |
Bi M | 33.09 | 4.93 |
Totals | 100.00 | 100.00 |
Photoelectrocatalysts | Degradation Rate | Slope | R2 | Kinetic Equation |
---|---|---|---|---|
Bi2WO6 | 25% | 0.0913 | 0.986 | Y = 0.0913X + 0.02486 |
ZnTiO3 | 55% | 0.264 | 0.976 | Y = 0.264X − 0.07816 |
ZnTiO3/Bi2WO6(1:1) | 77% | 0.424 | 0.989 | Y = 0.424X |
ZnTiO3/Bi2WO6(1.5:1) | 93% | 0.9517 | 0.992 | Y = 0.9517X − 0.195 |
ZnTiO3/Bi2WO6(0.7:1) | 71% | 0.3472 | 0.971 | Y = 0.3472X − 0.086 |
ZnTiO3/Bi2WO6(2:1) | 81% | 0.5733 | 0.992 | Y = 0.5733X − 0.126 |
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Zuo, C.; Tai, X.; Jiang, Z.; Liu, M.; Jiang, J.; Su, Q.; Yan, X. S-Scheme 2D/2D Heterojunction of ZnTiO3 Nanosheets/Bi2WO6 Nanosheets with Enhanced Photoelectrocatalytic Activity for Phenol Wastewater under Visible Light. Molecules 2023, 28, 3495. https://doi.org/10.3390/molecules28083495
Zuo C, Tai X, Jiang Z, Liu M, Jiang J, Su Q, Yan X. S-Scheme 2D/2D Heterojunction of ZnTiO3 Nanosheets/Bi2WO6 Nanosheets with Enhanced Photoelectrocatalytic Activity for Phenol Wastewater under Visible Light. Molecules. 2023; 28(8):3495. https://doi.org/10.3390/molecules28083495
Chicago/Turabian StyleZuo, Cheng, Xishi Tai, Zaiyong Jiang, Meifang Liu, Jinhe Jiang, Qian Su, and Xueyuan Yan. 2023. "S-Scheme 2D/2D Heterojunction of ZnTiO3 Nanosheets/Bi2WO6 Nanosheets with Enhanced Photoelectrocatalytic Activity for Phenol Wastewater under Visible Light" Molecules 28, no. 8: 3495. https://doi.org/10.3390/molecules28083495
APA StyleZuo, C., Tai, X., Jiang, Z., Liu, M., Jiang, J., Su, Q., & Yan, X. (2023). S-Scheme 2D/2D Heterojunction of ZnTiO3 Nanosheets/Bi2WO6 Nanosheets with Enhanced Photoelectrocatalytic Activity for Phenol Wastewater under Visible Light. Molecules, 28(8), 3495. https://doi.org/10.3390/molecules28083495