Wastewater Upgrading to Fuels: Routes and Challenges
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Abstract
This perspective outlines technical strategies for upgrading wastewater into fuels and value-added chemicals, emphasizing a shift toward circular economy and resource recovery through advanced processes like photocatalysis, electrolysis, and microbial technologies.
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References
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Cite This Article
TY - JOUR AU - Natividad, Reyna PY - 2025 DA - 2025/08/28 TI - Wastewater Upgrading to Fuels: Routes and Challenges JO - Journal of Chemical Engineering and Renewable Fuels T2 - Journal of Chemical Engineering and Renewable Fuels JF - Journal of Chemical Engineering and Renewable Fuels VL - 1 IS - 1 SP - 3 EP - 8 DO - 10.62762/JCERF.2025.342282 UR - https://www.icck.org/article/abs/JCERF.2025.342282 KW - renewable fuels KW - water-energy-carbon nexus KW - hydrogen KW - circular economy KW - water recovery AB - This perspective outlines technical strategies for upgrading wastewater into fuels and value-added chemicals, emphasizing a shift toward circular economy and resource recovery through advanced processes like photocatalysis, electrolysis, and microbial technologies. SN - 3070-1058 PB - Institute of Central Computation and Knowledge LA - English ER -
@article{Natividad2025Wastewater,
author = {Reyna Natividad},
title = {Wastewater Upgrading to Fuels: Routes and Challenges},
journal = {Journal of Chemical Engineering and Renewable Fuels},
year = {2025},
volume = {1},
number = {1},
pages = {3-8},
doi = {10.62762/JCERF.2025.342282},
url = {https://www.icck.org/article/abs/JCERF.2025.342282},
abstract = {This perspective outlines technical strategies for upgrading wastewater into fuels and value-added chemicals, emphasizing a shift toward circular economy and resource recovery through advanced processes like photocatalysis, electrolysis, and microbial technologies.},
keywords = {renewable fuels, water-energy-carbon nexus, hydrogen, circular economy, water recovery},
issn = {3070-1058},
publisher = {Institute of Central Computation and Knowledge}
}
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