Photocatalytic Hydrogen Production Performance of ZnCdS/CoWO4 Heterojunctions in the Reforming of Lignin Model Compounds
Abstract
1. Introduction
2. Materials and Methods
2.1. Preparation of Photocatalysts
2.2. Characterization
2.3. Electrochemical Measurements
2.4. Photocatalytic Performance Evaluation
2.5. Quantitative Calculation
3. Results and Discussion
3.1. Characterization of Photocatalysts
3.2. Synergistic Photocatalytic Hydrogen Evolution Performance Analysis of Lignin Model Compounds
3.3. Synergistic Photocatalytic Hydrogen Evolution Performance Analysis of Sodium Lignosulfonate
3.4. Analysis of the Mechanism of Photocatalytic Hydrogen Productions
4. Conclusions
- The construction of the heterojunction improved charge separation, enhanced redox capability, and optimized interfacial contact between ZCS and CW, thereby significantly boosting the photocatalytic hydrogen evolution activity from lignocellulose.
- When the CW content reached 10%, the ZCS/CW-10% photocatalyst exhibited the highest hydrogen evolution rate: 223.30 μmol·g−1·h−1 using lignin model compounds and 140.28 μmol·g−1·h−1 using sodium lignosulfonate, which was 1.6 times higher than that for sodium lignosulfonate. The superior performance of lignin model compounds is attributed to their lower molecular weight and greater susceptibility to oxidative degradation compared to the more oxidation-resistant sodium lignosulfonate.
- High-performance liquid chromatography (HPLC) analysis revealed that the photocatalytic oxidation of lignin model compounds led to the formation of phenol, acetophenone, and an intermediate compound, with hydrogen evolution being closely related to the concentration of the intermediate.
- ESR experiments further identified the active oxygen species involved in the process, providing deeper insight into the mechanism of photocatalytic hydrogen evolution.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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| Sample Name | Surface Area (m2/g) | Pore Volume (m3/g) | Bore Diameter (nm) |
|---|---|---|---|
| ZCS | 40.2655 | 0.3119 | 30.9891 |
| CW | 21.5298 | 0.1315 | 24.4268 |
| ZCS/CW-10% | 29.1617 | 0.2234 | 29.2744 |
| Catalyst | Reaction Time (h) | Conversion Rate (%) | Hydrogen Production per Unit Time (μmol/g/h) | |
|---|---|---|---|---|
| 1 | CW | 5 | 0 | 0.32 |
| 2 | ZCS | 5 | 19.02 | 52.66 |
| 3 | ZCS/CW-5% | 5 | 17.35 | 184.97 |
| 4 | ZCS/CW-10% | 5 | 22.69 | 223.29 |
| 5 | ZCS/CW-15% | 5 | 19.17 | 105.71 |
| 6 | ZCS/CW-20% | 5 | 17.05 | 71.95 |
| Catalyst | Reaction Time (h) | Hydrogen Production per Unit Time (μmol/g/h) | |
|---|---|---|---|
| 1 | CW | 5 | 0.21 |
| 2 | ZCS | 5 | 78.02 |
| 3 | ZCS/CW-5% | 5 | 90.48 |
| 4 | ZCS/CW-10% | 5 | 140.28 |
| 5 | ZCS/CW-15% | 5 | 133.88 |
| 6 | ZCS/CW-20% | 5 | 108.91 |
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Zhang, J.; Li, J.; Guan, W. Photocatalytic Hydrogen Production Performance of ZnCdS/CoWO4 Heterojunctions in the Reforming of Lignin Model Compounds. Materials 2025, 18, 4401. https://doi.org/10.3390/ma18184401
Zhang J, Li J, Guan W. Photocatalytic Hydrogen Production Performance of ZnCdS/CoWO4 Heterojunctions in the Reforming of Lignin Model Compounds. Materials. 2025; 18(18):4401. https://doi.org/10.3390/ma18184401
Chicago/Turabian StyleZhang, Jianxu, Jingwei Li, and Weisheng Guan. 2025. "Photocatalytic Hydrogen Production Performance of ZnCdS/CoWO4 Heterojunctions in the Reforming of Lignin Model Compounds" Materials 18, no. 18: 4401. https://doi.org/10.3390/ma18184401
APA StyleZhang, J., Li, J., & Guan, W. (2025). Photocatalytic Hydrogen Production Performance of ZnCdS/CoWO4 Heterojunctions in the Reforming of Lignin Model Compounds. Materials, 18(18), 4401. https://doi.org/10.3390/ma18184401
