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Exploring indigenously produced celite-immobilized Rhizopus oryzae NRRL 3562-lipase for biodiesel production

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  • Dash, Archana
  • Banerjee, Rintu

Abstract

Lipase-mediated transesterification is a greener method for renewable biodiesel production, which can maintain high-level purity of the end products compared to the chemical transesterification methods. Hence, in this study, lipase was produced indigenously using Solid State Fermentation (SSF) from Rhizopus oryzae NRRL 3562, which was further immobilized on activated celite for transesterification. The evaluation of various transesterification attributes and stepwise optimizations were carried out for two different feedstock lipids, viz., a unialgal culture of Chlorella minutissima MCC 27, and a phyco-myco co-culture of C. minutissima MCC 27 and Aspergillus awamori. The optimal conditions, viz., 1:3–1:4 oil:methanol (molar ratio), 15 U lipase, 35 °-40 °C reaction temperature, 1% initial water loading, 1:0.4–1:0.6 substrate:hexane (w/v), 200–250 rpm agitation speed, and 30 h reaction duration ensued 91.52–93.25% fatty acid methyl ester (FAME) conversions in the selected microbial strains. The spent lipase showed potential for cyclic use and was found to have upheld almost 90% residual activity at the end of the 5th cycle. The two resultant biodiesels showed comparable fuel properties except a marginal alleviation in density, viscosity, and iodine value in case of C. minutissima MCC 27 and A. awamori co-culture biodiesel compared to C. minutissima biodiesel.

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  • Dash, Archana & Banerjee, Rintu, 2021. "Exploring indigenously produced celite-immobilized Rhizopus oryzae NRRL 3562-lipase for biodiesel production," Energy, Elsevier, vol. 222(C).
  • Handle: RePEc:eee:energy:v:222:y:2021:i:c:s0360544221001997
    DOI: 10.1016/j.energy.2021.119950
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    References listed on IDEAS

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    1. Zhao, Xuebing & Qi, Feng & Yuan, Chongli & Du, Wei & Liu, Dehua, 2015. "Lipase-catalyzed process for biodiesel production: Enzyme immobilization, process simulation and optimization," Renewable and Sustainable Energy Reviews, Elsevier, vol. 44(C), pages 182-197.
    2. Yang, Cheng-Yuan & Fang, Zhen & Li, Bo & Long, Yun-feng, 2012. "Review and prospects of Jatropha biodiesel industry in China," Renewable and Sustainable Energy Reviews, Elsevier, vol. 16(4), pages 2178-2190.
    3. Wang, Hanxi & Xu, Jianling & Sheng, Lianxi, 2019. "Study on the comprehensive utilization of city kitchen waste as a resource in China," Energy, Elsevier, vol. 173(C), pages 263-277.
    4. Dimitrios N Tziourtzioumis & Anastassios M Stamatelos, 2017. "Experimental Investigation of the Effect of Biodiesel Blends on a DI Diesel Engine’s Injection and Combustion," Energies, MDPI, vol. 10(7), pages 1-15, July.
    5. Liu, Chien-Hung & Huang, Chien-Chang & Wang, Yao-Wen & Lee, Duu-Jong & Chang, Jo-Shu, 2012. "Biodiesel production by enzymatic transesterification catalyzed by Burkholderia lipase immobilized on hydrophobic magnetic particles," Applied Energy, Elsevier, vol. 100(C), pages 41-46.
    6. Román-Figueroa, Celián & Olivares-Carrillo, Pilar & Paneque, Manuel & Palacios-Nereo, Francisco Javier & Quesada-Medina, Joaquín, 2016. "High-yield production of biodiesel by non-catalytic supercritical methanol transesterification of crude castor oil (Ricinus communis)," Energy, Elsevier, vol. 107(C), pages 165-171.
    7. Kang Zhao & Qinjian Di & Xi Cao & Meng Wang & Li Deng & Fang Wang, 2016. "Production of Biodiesel Using Immobilized Lipase and the Characterization of Different Co-Immobilizing Agents and Immobilization Methods," Sustainability, MDPI, vol. 8(9), pages 1-11, August.
    8. Khoobbakht, Golmohammad & Kheiralipour, Kamran & Yuan, Wenqiao & Seifi, Mohammad Reza & Karimi, Mahmoud, 2020. "Desirability function approach for optimization of enzymatic transesterification catalyzed by lipase immobilized on mesoporous magnetic nanoparticles," Renewable Energy, Elsevier, vol. 158(C), pages 253-262.
    9. Barnwal, B.K. & Sharma, M.P., 2005. "Prospects of biodiesel production from vegetable oils in India," Renewable and Sustainable Energy Reviews, Elsevier, vol. 9(4), pages 363-378, August.
    10. Singhabhandhu, Ampaitepin & Tezuka, Tetsuo, 2010. "A perspective on incorporation of glycerin purification process in biodiesel plants using waste cooking oil as feedstock," Energy, Elsevier, vol. 35(6), pages 2493-2504.
    11. Abrahamsson, Johanna & Andreasson, Emil & Hansson, Niklas & Sandström, David & Wennberg, Ellinor & Maréchal, Manuel & Martinelli, Anna, 2015. "A Raman spectroscopic approach to investigate the production of biodiesel from soybean oil using 1-alkyl-3-methylimidazolium ionic liquids with intermediate chain length," Applied Energy, Elsevier, vol. 154(C), pages 763-770.
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