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Production Efficiency of Advanced Liquid Biofuels: Prospects and Challenges

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  • Tamás Mizik

    (Institute of Sustainable Development, Corvinus University of Budapest, 1093 Budapest, Hungary)

  • Christian Barika Igbeghe

    (Institute of Applied Economics, Faculty of Economics and Business, University of Debrecen, 4032 Debrecen, Hungary)

  • Zsuzsanna Deák

    (Department of Business Sciences and Digital Skills, Keleti Károly Faculty of Business and Management, Óbuda University, 1086 Budapest, Hungary)

Abstract

Renewable sources are becoming more critical in light of global warming and the recent energy crisis. As a renewable energy source, biofuels may play an essential role in this process, especially in the transport sector. Advanced biofuels provide a great opportunity, as their potential feedstocks do not compete with food production. Based on a systematic literature review, this study aims to provide a comprehensive overview of the prospects and challenges of advanced liquid biofuels. Out of the identified 508 articles, 188 were abstract-screened, providing 67 articles for in-depth screening. Finally, 57 articles were reviewed. Although advanced biofuels are not yet economically viable, it is evident that every step of the production process can be optimized. Moreover, technological advancements, such as the use of novel catalysts and co-catalysts, nanotechnology, and genetic and metabolic engineering, offer great opportunities for enhanced production efficiency, which is key for their production to be profitable.

Suggested Citation

  • Tamás Mizik & Christian Barika Igbeghe & Zsuzsanna Deák, 2025. "Production Efficiency of Advanced Liquid Biofuels: Prospects and Challenges," Energies, MDPI, vol. 18(4), pages 1-18, February.
  • Handle: RePEc:gam:jeners:v:18:y:2025:i:4:p:1008-:d:1594956
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    References listed on IDEAS

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    1. Mousavi-Avval, Seyed Hashem & Shah, Ajay, 2021. "Life cycle energy and environmental impacts of hydroprocessed renewable jet fuel production from pennycress," Applied Energy, Elsevier, vol. 297(C).
    2. Sabarathinam Shanmugam & Anjana Hari & Arivalagan Pugazhendhi & Timo Kikas, 2023. "Integrated Catalytic Upgrading of Biomass-Derived Alcohols for Advanced Biofuel Production," Energies, MDPI, vol. 16(13), pages 1-24, June.
    3. Elgharbawy, Abdallah S. & Ali, Rehab M., 2022. "Techno-economic assessment of the biodiesel production using natural minerals rocks as a heterogeneous catalyst via conventional and ultrasonic techniques," Renewable Energy, Elsevier, vol. 191(C), pages 161-175.
    4. Mukhtar, Ahmad & Saqib, Sidra & Lin, Hongfei & Hassan Shah, Mansoor Ul & Ullah, Sami & Younas, Muhammad & Rezakazemi, Mashallah & Ibrahim, Muhammad & Mahmood, Abid & Asif, Saira & Bokhari, Awais, 2022. "Current status and challenges in the heterogeneous catalysis for biodiesel production," Renewable and Sustainable Energy Reviews, Elsevier, vol. 157(C).
    5. Shanmugam, Sabarathinam & Ngo, Huu-Hao & Wu, Yi-Rui, 2020. "Advanced CRISPR/Cas-based genome editing tools for microbial biofuels production: A review," Renewable Energy, Elsevier, vol. 149(C), pages 1107-1119.
    6. Zaman Sajid & Maria Aparecida Batista da Silva & Syed Nasir Danial, 2021. "Historical Analysis of the Role of Governance Systems in the Sustainable Development of Biofuels in Brazil and the United States of America (USA)," Sustainability, MDPI, vol. 13(12), pages 1-24, June.
    7. Haseeb Yaqoob & Yew Heng Teoh & Farooq Sher & Muhammad Umer Farooq & Muhammad Ahmad Jamil & Zareena Kausar & Noor Us Sabah & Muhammad Faizan Shah & Hafiz Zia Ur Rehman & Atiq Ur Rehman, 2021. "Potential of Waste Cooking Oil Biodiesel as Renewable Fuel in Combustion Engines: A Review," Energies, MDPI, vol. 14(9), pages 1-20, April.
    8. Jinmeng Chen & Xiaotian Ma & Mengying Liang & Zhiwei Guo & Yafan Cai & Chenjie Zhu & Zhi Wang & Shilei Wang & Jingliang Xu & Hanjie Ying, 2024. "Physical–Chemical–Biological Pretreatment for Biomass Degradation and Industrial Applications: A Review," Waste, MDPI, vol. 2(4), pages 1-23, November.
    9. Lovisa Panduleni Johannes & Tran Dang Xuan, 2024. "Comparative Analysis of Acidic and Alkaline Pretreatment Techniques for Bioethanol Production from Perennial Grasses," Energies, MDPI, vol. 17(5), pages 1-33, February.
    10. Sahu, Omprakash, 2021. "Appropriateness of rose (Rosa hybrida) for bioethanol conversion with enzymatic hydrolysis: Sustainable development on green fuel production," Energy, Elsevier, vol. 232(C).
    11. Larnaudie, Valeria & Ferrari, Mario Daniel & Lareo, Claudia, 2022. "Switchgrass as an alternative biomass for ethanol production in a biorefinery: Perspectives on technology, economics and environmental sustainability," Renewable and Sustainable Energy Reviews, Elsevier, vol. 158(C).
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