Integrated Conversion of Plastic Waste and CO2 into Value-Added Chemicals and Fuels via Electrochemical, and Photoelectrochemical Pathways
Abstract
1. Introduction
2. Pairing Plastic Reforming with CO2 Reduction
3. Electrochemical Plastic Waste Upcycling Coupled with CO2 Reduction Reactions
4. Photoelectrochemical (PEC) Systems for Coupled Plastic Reforming and CO2 Conversion
5. Conclusions
6. Future Perspectives
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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| Anode | Cathode | Anodic Product and Its FE% | Cathodic Product and Its FE% | Cell Type | Vfull cells/FE% | Reference |
|---|---|---|---|---|---|---|
| CuCoO | Bi2O2CO3 | Formic acid (from EG oxidation): 85.7% FE at 1.5 VRHE | Formate (from CO2RR): 97.4% FE at −0.8 VRHE | flow | 1.9 V, total FE of 151.8% for formic acid | 2023/[39] |
| NiCo2O4 | SnO2 | Formic acid (from PET hydrolysate oxidation): 90% FE at 1.45 VRHE | Formic acid (from CO2RR): 82% FE at −0.9 VRHE | flow | 1.9 V, total FE of 155% for formic acid | 2022/[38] |
| CuO@Ni(OH)2 | Pb-SnO | Formate (from EG oxidation) | Formate (from CO2RR): 89% FE at −1 VRHE | flow | 1.9 V | 2024/[37] |
| NiOOH/NF | Bi2O3 | Formate (from EGOR): >88% FE (1.4–1.8 VRHE) | Formate (from CO2RR): >90% FE (−0.8 to −1.2 VRHE) | MEA | 2.0–2.6 V (FE > 85%) for formate | 2026/[40] |
| NiOOH/Ni3Bi2S2 | Bi2S3 | Formate (from PET hydrolysate oxidation): 96% FE | Formate (from CO2RR): 97% FE | MEA | 2.0 V, total FE of 175% for formate | 2024/[41] |
| NiMn-LDH | InOx | Formate (from EG/PET hydrolysate oxidation): ~90% FE at 1.5 VRHE | Formate (from CO2RR): up to 98% FE at −800 mA cm−2 | flow | - | 2025/[23] |
| SnO2 | In2O3 | Formate (from EGOR): 99.8% FE at 1.48 VRHE | - | flow | 2.9 V, total FE of 182%for formate | 2025/[42] |
| NiCo2O4 | BiOI-C | - | Formate (from CO2RR): >90% FE (−0.9 to −1.3 VRHE) | MEA | 1.5 V, total FE of 175% for formate | 2025/[43] |
| 3D Ni foam | Bi2O2CO3 | - | - | flow | 2.91 V, total FE of 179.7% for formate | 2025/[36] |
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Masoumi, Z.; Masoumilari, S.; Lee, S.; Kyung, D.; Tayebi, M. Integrated Conversion of Plastic Waste and CO2 into Value-Added Chemicals and Fuels via Electrochemical, and Photoelectrochemical Pathways. Energies 2026, 19, 2588. https://doi.org/10.3390/en19112588
Masoumi Z, Masoumilari S, Lee S, Kyung D, Tayebi M. Integrated Conversion of Plastic Waste and CO2 into Value-Added Chemicals and Fuels via Electrochemical, and Photoelectrochemical Pathways. Energies. 2026; 19(11):2588. https://doi.org/10.3390/en19112588
Chicago/Turabian StyleMasoumi, Zohreh, Shokouh Masoumilari, Simin Lee, Daeseung Kyung, and Meysam Tayebi. 2026. "Integrated Conversion of Plastic Waste and CO2 into Value-Added Chemicals and Fuels via Electrochemical, and Photoelectrochemical Pathways" Energies 19, no. 11: 2588. https://doi.org/10.3390/en19112588
APA StyleMasoumi, Z., Masoumilari, S., Lee, S., Kyung, D., & Tayebi, M. (2026). Integrated Conversion of Plastic Waste and CO2 into Value-Added Chemicals and Fuels via Electrochemical, and Photoelectrochemical Pathways. Energies, 19(11), 2588. https://doi.org/10.3390/en19112588

