The growing demand for sustainable and environmentally friendly energy sources has intensified interest in bioethanol production from renewable biomass, particularly lignocellulosic agricultural residues. This study evaluated the bioethanol production potential of selected agro-wastes including corn cob, rice straw, cassava peels, sawdust, and groundnut shells, sourced from Makurdi, Benue State, Nigeria, with the aim of identifying a feasible and sustainable feedstock for renewable fuel generation. The substrates were subjected to alkaline pre-treatment using sodium hydroxide to enhance saccharification, followed by fermentation using Saccharomycescerevisiae (PWA) under controlled laboratory conditions. Variations in pH, reducing sugar concentration, ethanol yield, and yeast growth dynamics were monitored over a four-day fermentation period. The results revealed substrate-dependent fermentation behavior. pH values remained predominantly within a slightly alkaline range across all substrates, with cassava peels exhibiting a progressive decline from pH 8.0 to 6.0, while groundnut shells showed an increase to pH 9.1 by day four. Reducing sugar concentrations decreased over time in all substrates, indicating active microbial utilization, with rice straw recording the highest initial reducing sugar concentration (0.076 ± 0.001 g/g). Ethanol production peaked between days one and two, depending on the substrate, with cassava peels yielding the highest ethanol concentration (0.045 ± 0.001 g/g). Yeast growth trends correlated positively with fermentable sugar availability, as cassava peels consistently supported the highest Saccharomycescerevisiae (PWA) population, reaching 4.82 × 106 CFU/mL by day four. Overall, cassava peels demonstrated superior fermentability, ethanol productivity, and microbial support compared to the other agricultural residues evaluated. The findings highlight the significant potential of locally available lignocellulosic wastes for sustainable bioethanol production and underscore their role in waste valorization, greenhouse gas mitigation, and renewable energy development. This study provides valuable insights for advancing biofuel technologies in Nigeria and contributes to efforts toward achieving the United Nations Sustainable Development Goal 7 on affordable and clean energy.
References
[1]
United Nations (2015) Sustainable Development Goals. https://sdgs.un.org/goals/goal7
[2]
International Energy Agency (2022) Renewables 2022. https://www.iea.org
[3]
World Bank (2021) Access to Electricity (% of Population). https://data.worldbank.org
[4]
Ohimain, E.I. (2010) Emerging Bio-Ethanol Projects in Nigeria: Their Opportunities and Challenges. EnergyPolicy, 38, 7161-7168. https://doi.org/10.1016/j.enpol.2010.07.038
[5]
Afzal, A., Fatima, T., Tabassum, M., Nadeem, M., Irfan, M. and Syed, Q. (2018) Bioethanol Production from Saw Dust through Simultaneous Saccharification and Fermentation. PunjabUniversityJournalofZoology, 33, 145-148. https://doi.org/10.17582/journal.pujz/2018.33.2.145.148
[6]
Ebrahimian, F., Karimi, K. and Kumar, R. (2020) Sustainable Biofuels and Bioplastic Production from the Organic Fraction of Municipal Solid Waste. WasteManagement, 116, 40-48. https://doi.org/10.1016/j.wasman.2020.07.049
[7]
Sibi, G. (2015) Low Cost Carbon and Nitrogen Sources for Higher Microalgal Biomass and Lipid Production Using Agricultural Wastes. JournalofEnvironmentalScienceandTechnology, 8, 113-121. https://doi.org/10.3923/jest.2015.113.121
[8]
Chisti, Y. (2007) Biodiesel from Microalgae. BiotechnologyAdvances, 25, 294-306. https://doi.org/10.1016/j.biotechadv.2007.02.001
[9]
Ogbonna, I.O., Moheimani, N.R. and Ogbonna, J.C. (2015) Potentials of Microalgae Biodiesel Production in Nigeria. NigerianJournalofBiotechnology, 29, 44-55. https://doi.org/10.4314/njb.v29i1.7
[10]
Ogbonna, I.O. and Ogbonna, J.C. (2018) Evaluation of Oil Producing Potential of a New Isolate—Chlorella lewinii SUB3545914 for Biodiesel Production under Heterotrophic Cultivation. JournalofSustainableBioenergySystems, 8, 67-81. https://doi.org/10.4236/jsbs.2018.83005
[11]
Abad, V., Avila, R., Vicent, T. and Font, X. (2019) Promoting Circular Economy in the Surroundings of an Organic Fraction of Municipal Solid Waste Anaerobic Digestion Treatment Plant: Biogas Production Impact and Economic Factors. BioresourceTechnology, 283, 10-17. https://doi.org/10.1016/j.biortech.2019.03.064
[12]
Gołaszewski, J., et al. (2012) Conceptual Framework of Bioethanol Production from Lignocellulose for Agricultural Profitability. Environmental Biotechnology, 8, 15-27.
[13]
Miller, G.L. (1959) Use of Dinitrosalicylic Acid Reagent for Determination of Reducing Sugar. AnalyticalChemistry, 31, 426-428. https://doi.org/10.1021/ac60147a030
Caputi, A., Ueda, M. and Brown, T. (1968) Spectrophotometric Determination of Ethanol in Wine. AmericanJournalofEnologyandViticulture, 19, 160-165. https://doi.org/10.5344/ajev.1968.19.3.160
[16]
Mood, S.H., Larsen, J., Meyer, A.S. and Jørgensen, H. (2013) Fermentation Strategies for Lignocellulosic Ethanol. Biotechnology Advances, 31, 1355-1365.
[17]
Saini, J.K., Saini, R. and Tewari, L. (2014) Lignocellulosic Agriculture Wastes as Biomass Feedstocks for Second-Generation Bioethanol Production: Concepts and Recent Developments. 3 Biotech, 5, 337-353. https://doi.org/10.1007/s13205-014-0246-5
[18]
Zabed, H., Sahu, J.N., Suely, A., Boyce, A.N. and Faruq, G. (2017) Bioethanol Production from Renewable Sources: Current Perspectives and Technological Progress. RenewableandSustainableEnergyReviews, 71, 475-501. https://doi.org/10.1016/j.rser.2016.12.076
[19]
Binod, P., Janu, K.U., Sindhu, R. and Pandey, A. (2011) Hydrolysis of Lignocellulosic Biomass. Bioresource Technology, 102, 4767-4774.
[20]
Chandel, A.K., Singh, O.V., Rao, L.V. and Chandrasekhar, G. (2012) Bioconversion of Lignocellulosic Biomass into Ethanol. Bioresource Technology, 113, 342-349.
[21]
Ajao, K.R., Ojumu, T.V. and Layokun, S.K. (2018) Bioethanol Production from Cassava Peels. Biofuels, 9, 301-308.
[22]
Kumar, A., Singh, S. and Singh, R. (2020) Lignin Inhibition in Bioethanol Production. Renewable and Sustainable Energy Reviews, 119, Article ID: 109586.
[23]
Zhang, Q., Wang, J. and Bao, J. (2019) High-Titer Ethanol Production from Cassava Residues. Biotechnology for Biofuels, 12, 12-25.
[24]
Jönsson, L.J. and Martín, C. (2016) Pretreatment of Lignocellulose: Formation of Inhibitory By-Products and Strategies for Minimizing Their Effects. BioresourceTechnology, 199, 103-112. https://doi.org/10.1016/j.biortech.2015.10.009
Adewumi, A.O., Oyeleke, S.B. and Ajayi, O.A. (2020) Bioethanol Production from Cassava Peel Using Saccharomyces cerevisiae. Renewable Energy, 146, 249-256.
[27]
Basso, L.C., Alcarde, A.R. and Portugal-Nunes, D.J. (2011) Yeast Selection for Fuel Ethanol Production. FEMS Yeast Research, 11, 593-602.
[28]
Kumar, R., Parveen, F. and Bansal, V. (2021) Strategies for Enhanced Bioethanol Production. Energy Conversion and Management, 236, Article ID: 114041.