Skip to main navigation menu Skip to main content Skip to site footer

Review Articles

Vol. 13 No. sp4 (2026): National Symposium on Recent Advances in Life Sciences

Renewable feedstocks and agricultural catalysts: Transforming biodiesel production

DOI
https://doi.org/10.14719/pst.13493
Submitted
2 January 2026
Published
31-07-2026

Abstract

The sustainability of the energy supply has grown significantly from economic, environmental and public health standpoint. This has accelerated the search for renewable and sustainable energy alternatives. Due to challenges with feedstock availability, land use, the food vs. fuel dilemma and generation costs, biodiesel's economic and environmental sustainability is debatable. Apart from feedstock concerns, the cost of biodiesel is greatly impacted using catalysts. Recent studies have demonstrated that agricultural waste can be converted into efficient heterogeneous catalysts that are both cost-effective and environmentally sustainable. These waste-derived catalysts have achieved biodiesel yields of 85–98 % while reducing catalyst preparation costs by approximately 30–60 % compared with conventional catalysts. This review comprehensively summarises recent advances in the conversion of agricultural residues into efficient catalysts for biodiesel production. It includes important components like life cycle assessments (LCA), feedstock development, catalyst synthesis, comparative performance and economic viability. Significant developments in the catalytic use of many agricultural by-products are carefully examined.

References

  1. 1. Muh E, Tabet F, Amara S. Biomass conversion to fuels and value-added chemicals: a comprehensive review of the thermochemical processes. Curr Altern Energy. 2021;4(1):3–25. https://doi.org/10.2174/2405463103666191022121648
  2. 2. Nath B, Basumatary B, Wary N, Basumatary UR, Basumatary J, Rokhum SL, et al. Agricultural waste-based heterogeneous catalyst for the production of biodiesel: a ranking study via the VIKOR method. Int J Energy Res. 2023;2023:7208754. https://doi.org/10.1155/2023/7208754
  3. 3. Banković-Ilić IB, Miladinović MR, Stamenković OS, Veljković VB. Application of nano CaO-based catalysts in biodiesel synthesis. Renew Sustain Energy Rev. 2017;72:746–60. https://doi.org/10.1016/j.rser.2017.01.076
  4. 4. Singh D, Sharma D, Soni SL, Sharma S, Sharma PK, Jhalani A. A review on feedstocks, production processes, and yield for different generations of biodiesel. Fuel. 2020;262:116553. https://doi.org/10.1016/j.fuel.2019.116553
  5. 5. Veluru S, Hamzah HT, Tukaram BM, Poiba VR, Mahdi HS. A review on biodiesel production from various feedstocks by transesterification. IOP Conf Ser Mater Sci Eng. 2022;1258(1):012024. https://doi.org/10.1088/1757-899X/1258/1/012024
  6. 6. Belshaw N, Grouneva I, Aram L, Gal A, Hopes A, Mock T. Efficient gene replacement by CRISPR/Cas-mediated homologous recombination in the model diatom Thalassiosira pseudonana. New Phytol. 2023;238(1):438–52. https://doi.org/10.1111/nph.18587
  7. 7. Pydimalla M, Husaini S, Kadire A, Verma RK. Sustainable biodiesel: A comprehensive review on feedstock, production methods, applications, challenges and opportunities. Mater Today Proc. 2023;92:458–64. https://doi.org/10.1016/j.matpr.2023.03.593
  8. 8. Ozor PA, Aigbodion VS, Sukdeo NI. Modified calcium oxide nanoparticles derived from oyster shells for biodiesel production from waste cooking oil. Fuel Commun. 2023;14:100085. https://doi.org/10.1016/j.jfueco.2023.100085
  9. 9. Yuan X, Cao Y, Li J, Patel AK, Dong CD, Jin X, et al. Recent advancements and challenges in emerging applications of biochar-based catalysts. Biotechnol Adv. 2023;67:108181. https://doi.org/10.1016/j.biotechadv.2023.108181
  10. 10. Nawaz S, Jamil F, Akhter P, Majeed K, Balčiūnaitė A, ur-Rehman MH, et al. Unlocking the future of sustainable energy: biodiesel synthesis from non-edible feedstocks powered by eco-friendly nano-magnetic catalysts. Biofuels. 2024;15(7):865–81. https://doi.org/10.1080/17597269.2023.2294229
  11. 11. Tang J, Abbas AK, Koka NA, Sadoon N, Abbas JK, Abdalhuseen RA, et al. Optimization of thermal biofuel production from biomass using CaO-based catalyst through different algorithm-based machine learning approaches. Case Stud Therm Eng. 2023;50:103419. https://doi.org/10.1016/j.csite.2023.103419
  12. 12. He L, Chen L, Nie Y, He M, Wu G, Li Y, et al. A practical approach for enhanced biodiesel production using organic modified montmorillonites as efficient heterogeneous hybrid catalysts. Green Chem. 2024;26(10):5954–65. https://doi.org/10.1039/D4GC01084A
  13. 13. Wang H, Zhou H, Yan Q, Wu X, Zhang H. Superparamagnetic nanospheres with efficient bifunctional acidic sites enable sustainable production of biodiesel from budget non-edible oils. Energy Convers Manag. 2023;297:117758. https://doi.org/10.1016/j.enconman.2023.117758
  14. 14. Chintagunta A, Prashant S, Satya N. Metabolic engineering and genome editing strategies for enhanced lipid production in microalgae. Biocell. 2024;48(8):1181–95. https://doi.org/10.32604/biocell.2024.050540
  15. 15. Atabani AE, Silitonga AS, Ong HC, Mahlia TM, Masjuki HH, Badruddin IA, et al. Non-edible vegetable oils: a critical evaluation of oil extraction, fatty acid compositions, biodiesel production, characteristics, engine performance and emissions production. Renew Sustain Energy Rev. 2013;18:211–45. https://doi.org/10.1016/j.rser.2012.10.013
  16. 16. Banković-Ilić IB, Stamenković OS, Veljković VB. Biodiesel production from non-edible plant oils. Renew Sustain Energy Rev. 2012;16(6):3621–47. https://doi.org/10.1016/j.rser.2012.03.002
  17. 17. Maneerung T, Kawi S, Dai Y, Wang CH. Sustainable biodiesel production via transesterification of waste cooking oil by using CaO catalysts prepared from chicken manure. Energy Convers Manag. 2016;123:487–97. https://doi.org/10.1016/j.enconman.2016.06.071
  18. 18. Balajii M, Niju S. Banana peduncle—a green and renewable heterogeneous base catalyst for biodiesel production from Ceiba pentandra oil. Renew Energy. 2020;146:2255–69. https://doi.org/10.1016/j.renene.2019.08.062
  19. 19. Maheshwari P, Haider MB, Yusuf M, Klemeš JJ, Bokhari A, Beg M, et al. A review on latest trends in cleaner biodiesel production: Role of feedstock, production methods, and catalysts. J Clean Prod. 2022;355:131588. https://doi.org/10.1016/j.jclepro.2022.131588
  20. 20. Wardle DA. Global sale of green air travel supported using biodiesel. Renew Sustain Energy Rev. 2003;7(1):1–64. https://doi.org/10.1016/S1364-0321(03)00002-9
  21. 21. Chintagunta AD, Zuccaro G, Kumar M, Kumar SJ, Garlapati VK, Postemsky PD, et al. Biodiesel production from lignocellulosic biomass using oleaginous microbes: prospects for integrated biofuel production. Front Microbiol. 2021;12:658284. https://doi.org/10.3389/fmicb.2021.658284
  22. 22. Haas MJ, McAloon AJ, Yee WC, Foglia TA. A process model to estimate biodiesel production costs. Bioresour Technol. 2006;97(4):671–8. https://doi.org/10.1016/j.biortech.2005.03.039
  23. 23. Dorado MP. Raw materials to produce low-cost biodiesel. In: Biofuels Refining and Performance. Amsterdam: Elsevier; 2008. p. 107–47.
  24. 24. Rengel R, Smith RT, Haslam RP, Sayanova O, Vila M, Leon R. Overexpression of acetyl-CoA synthetase (ACS) enhances the biosynthesis of neutral lipids and starch in the green microalga Chlamydomonas reinhardtii. Algal Res. 2018;31:183–93. https://doi.org/10.1016/j.algal.2018.02.009
  25. 25. Krishnan A, Kumaraswamy GK, Vinyard DJ, Gu H, Ananyev G, Posewitz MC, et al. Metabolic and photosynthetic consequences of blocking starch biosynthesis in the green alga Chlamydomonas reinhardtii sta6 mutant. Plant J. 2015;81(6):947–60. https://doi.org/10.1111/tpj.12783
  26. 26. Beeckman DS, Rüdelsheim P. Biosafety and biosecurity in containment: a regulatory overview. Front Bioeng Biotechnol. 2020;8:650. https://doi.org/10.3389/fbioe.2020.00650
  27. 27. Lerner A, Lieber AD, Nelson-Dooley C, Leu A, Perro M, Koch G, et al. Genetically modified microorganisms: risks and regulatory considerations for human and environmental health. Microorganisms. 2026;14(2):467. https://doi.org/10.3390/microorganisms14020467
  28. 28. Niehus X, Crutz-Le Coq AM, Sandoval G, Nicaud JM, Ledesma-Amaro R. Engineering Yarrowia lipolytica to enhance lipid production from lignocellulosic materials. Biotechnol Biofuels. 2018;11(1):1–14. https://doi.org/10.1186/s13068-018-1010-6
  29. 29. Yadav P, Dixit Y, Sharma AK. Current technological status and future prospect of biojet fuel production. In: Biojet Fuel: Current Technology and Future Prospect. Singapore: Springer; 2024. p. 229–72. https://doi.org/10.1007/978-981-99-8783-2_11
  30. 30. Sajjadi B, Raman AA, Arandiyan H. A comprehensive review on properties of edible and non-edible vegetable oil-based biodiesel: Composition, specifications and prediction models. Renew Sustain Energy Rev. 2016;63:62–92. https://doi.org/10.1016/j.rser.2016.05.035
  31. 31. Kumar B, Bhardwaj N, Agrawal K, Chaturvedi V, Verma P. Current perspective on pretreatment technologies using lignocellulosic biomass: An emerging biorefinery concept. Fuel Process Technol. 2020;199:106244. https://doi.org/10.1016/j.fuproc.2019.106244
  32. 32. Li Y, Horsman M, Wang B, Wu N, Lan CQ. Effects of nitrogen sources on cell growth and lipid accumulation of green alga Neochloris oleoabundans. Appl Microbiol Biotechnol. 2008;81(4):629–36. https://doi.org/10.1007/s00253-008-1681-1
  33. 33. Gaurav K, Neeti K, Singh R. Microalgae-based biodiesel production and its challenges and future opportunities: A review. Green Technol Sustain. 2024;2(1):100060. https://doi.org/10.1016/j.grets.2023.100060
  34. 34. Cárdenas J, Orjuela A, Sánchez DL, Narváez PC, Katryniok B, Clark J. Pre-treatment of used cooking oils for the production of green chemicals: A review. J Clean Prod. 2021;289:125129. https://doi.org/10.1016/j.jclepro.2020.125129
  35. 35. Folayan AJ, Anawe PA, Aladejare AE, Ayeni AO. Experimental investigation of the effect of fatty acids configuration, chain length, branching and degree of unsaturation on biodiesel fuel properties obtained from lauric oils, high-oleic and high-linoleic vegetable oil biomass. Energy Rep. 2019;5:793–806. https://doi.org/10.1016/j.egyr.2019.06.013
  36. 36. Sikarwar VS, Zhao M, Fennell PS, Shah N, Anthony EJ. Progress in biofuel production from gasification. Prog Energy Combust Sci. 2017;61:189–248. https://doi.org/10.1016/j.pecs.2017.04.001
  37. 37. Basumatary B, Das B, Nath B, Basumatary S. Synthesis and characterization of heterogeneous catalyst from sugarcane bagasse: Production of Jatropha seed oil methyl esters. Curr Res Green Sustain Chem. 2021;4:100082. https://doi.org/10.1016/j.crgsc.2021.100082
  38. 38. Khan HM, Iqbal T, Yasin S, Ali CH, Abbas MM, Jamil MA, et al. Application of agricultural waste as heterogeneous catalysts for biodiesel production. Catalysts. 2021;11(10):1215. https://doi.org/10.3390/catal11101215
  39. 39. Lin Q, Zhou W. A comprehensive review of palm oil in biodiesel production: from cultivation to market. J Energy Biosci. 2024;15:1–18. https://doi.org/10.5376/jeb.2024.15.0023
  40. 40. Anr R, Saleh AA, Islam MS, Hamdan S, Maleque MA. Biodiesel production from crude Jatropha oil using a highly active heterogeneous nanocatalyst by optimizing transesterification reaction parameters. Energy Fuels. 2016;30(1):334–43. https://doi.org/10.1021/acs.energyfuels.5b01899
  41. 41. Kaur M, Ali A. Lithium ion impregnated calcium oxide as nanocatalyst for biodiesel production from Karanja and Jatropha oils. Renew Energy. 2011;36(11):2866–71. https://doi.org/10.1016/j.renene.2011.04.014
  42. 42. Zhu LD, Li ZH, Hiltunen E. Strategies for lipid production improvement in microalgae as a biodiesel feedstock. Biomed Res Int. 2016;2016:8792548. https://doi.org/10.1155/2016/8792548
  43. 43. Medipally SR, Yusoff FM, Banerjee S, Shariff M. Microalgae as sustainable renewable energy feedstock for biofuel production. Biomed Res Int. 2015;2015:519513. https://doi.org/10.1155/2015/519513
  44. 44. Lee K, Mendes PC, Jeon H, Song Y, Dickieson MP, Anjum U, et al. Engineering nanoscale H supply chain to accelerate methanol synthesis on ZnZrOₓ. Nat Commun. 2023;14(1):819. https://doi.org/10.1038/s41467-023-36407-1
  45. 45. ASTM International. ASTM D6751 standard specification for biodiesel fuel blend stock.
  46. 46. Singh R, Das R, Sangwan S, Rohatgi B, Khanam R, Peera SP, et al. Utilisation of agro-industrial waste for sustainable green production: a review. Environ Sustain. 2021;4(4):619–36. https://doi.org/10.1007/s42398-021-00200-x
  47. 47. Kolawole ID, Kolawole GO, Sanni-Manuel BA, Kolawole SK, Ewansiha JU, Kolawole VA, et al. Economic impact of waste from food, water, and agriculture in Nigeria: challenges, implications, and applications—a review. Discover Environ. 2024;2(1):51. https://doi.org/10.1007/s44274-024-00086-6
  48. 48. Koul B, Yakoob M, Shah MP. Agricultural waste management strategies for environmental sustainability. Environ Res. 2022;206:112285. https://doi.org/10.1016/j.envres.2021.112285
  49. 49. Kusuma HS, Az-Zahra KD, Saputri RW, Utomo MD, Jaya DE, Amenaghawon AN, et al. Unlocking the potential of agricultural waste as biochar for sustainable biodiesel production: a comprehensive review. Bioresour Technol Rep. 2024;26:101848. https://doi.org/10.1016/j.biteb.2024.101848
  50. 50. Pattanaik L, Pattnaik F, Saxena DK, Naik SN. Biofuels from agricultural wastes. In: Second and Third Generation of Feedstocks. Elsevier; 2019. https://doi.org/10.1016/B978-0-12-815162-4.00005-7
  51. 51. Wang R, Zhou WW, Hanna MA, Zhang YP, Bhadury PS, Wang Y, et al. Biodiesel preparation, optimization, and fuel properties from non-edible feedstock, Datura stramonium L. Fuel. 2012;91(1):182–6. https://doi.org/10.1016/j.fuel.2011.07.001
  52. 52. Pathak G, Das D, Rajkumari K, Rokhum SL. Exploiting waste: towards a sustainable production of biodiesel using Musa acuminata peel ash as a heterogeneous catalyst. Green Chem. 2018;20(10):2365–73. https://doi.org/10.1039/C8GC00071A
  53. 53. Ghosh N, Patra M, Halder G. Current advances and future outlook of heterogeneous catalytic transesterification towards biodiesel production from waste cooking oil. Sustain Energy Fuels. 2024;8(6):1105–52. https://doi.org/10.1039/D3SE01564E
  54. 54. Baskar G, Gurugulladevi A, Nishanthini T, Aiswarya R, Tamilarasan K. Optimization and kinetics of biodiesel production from Mahua oil using manganese-doped zinc oxide nanocatalyst. Renew Energy. 2017;103:641–6. https://doi.org/10.1016/j.renene.2016.10.077
  55. 55. Usta N, Aydoğan B, Çon AH, Uğuzdoğan E, Özkal SG. Properties and quality verification of biodiesel produced from tobacco seed oil. Energy Convers Manag. 2011;52(5):2031–9. https://doi.org/10.1016/j.enconman.2010.12.021
  56. 56. Mansir N, Teo SH, Rashid U, Saiman MI, Tan YP, Alsultan GA, et al. Modified waste eggshell-derived bifunctional catalyst for biodiesel production from high free fatty acid waste cooking oil: a review. Renew Sustain Energy Rev. 2018;82:3645–55. https://doi.org/10.1016/j.rser.2017.10.098
  57. 57. Harvey M, Pilgrim S. The new competition for land: food, energy, and climate change. Food Policy. 2011;36(Suppl 1):S40–51. https://doi.org/10.1016/j.foodpol.2010.11.009
  58. 58. Khan NA, Usmani JN. Status of Jatropha cultivation for biodiesel production in Pakistan. Sci Technol Dev. 2010;29:1–5.
  59. 59. Damian CS, Devarajan Y, Jayabal R. A comprehensive review of the resource efficiency and sustainability in biofuel production from industrial and agricultural waste. J Mater Cycles Waste Manag. 2024;26(3):1264–76. https://doi.org/10.1007/s10163-024-01918-6
  60. 60. Gholami A, Pourfayaz F, Maleki A. Recent advances of biodiesel production using ionic liquids supported on nanoporous materials as catalysts: a review. Front Energy Res. 2020;8:144. https://doi.org/10.3389/fenrg.2020.00144
  61. 61. Lee AF, Bennett JA, Manayil JC, Wilson K. Heterogeneous catalysis for sustainable biodiesel production via esterification and transesterification. Chem Soc Rev. 2014;43(22):7887–916. https://doi.org/10.1039/C4CS00189C
  62. 62. Marinković DM, Stanković MV, Veličković AV, Avramović JM, Miladinović MR, Stamenković OO, et al. Calcium oxide as a promising heterogeneous catalyst for biodiesel production: current state and perspectives. Renew Sustain Energy Rev. 2016;56:1387–408. https://doi.org/10.1016/j.rser.2015.12.007
  63. 63. Kamp CJ, Bagi SD. Implications of the use of biodiesel on the longevity and operation of particle filters. Lubricants. 2022;10(10):259. https://doi.org/10.3390/lubricants10100259
  64. 64. Zabed H, Sahu JN, Boyce AN, Faruq G. Fuel ethanol production from lignocellulosic biomass: an overview on feedstocks and technological approaches. Renew Sustain Energy Rev. 2016;66:751–74. https://doi.org/10.1016/j.rser.2016.08.038
  65. 65. Kumar S, Paritosh K, Pareek N, Chawade A, Vivekanand V. De-construction of major Indian cereal crop residues through chemical pretreatment for improved biogas production: an overview. Renew Sustain Energy Rev. 2018;90:160–70. https://doi.org/10.1016/j.rser.2018.03.049
  66. 66. Afolalu SA, Salawu EY, Ogedengbe TS, Joseph OO, Okwilagwe O, Emetere ME, et al. Bio-agro waste valorization and its sustainability in the industry: a review. IOP Conf Ser Mater Sci Eng. 2021;1107:012140. https://doi.org/10.1088/1757-899X/1107/1/012140
  67. 67. Basumatary S, Nath B, Kalita P. Application of agro-waste derived materials as heterogeneous base catalysts for biodiesel synthesis. J Renew Sustain Energy. 2018;10(4):043105. https://doi.org/10.1063/1.5043328
  68. 68. Norjannah B, Ong HC, Masjuki HH, Juan JC, Chong WT. Enzymatic transesterification for biodiesel production: a comprehensive review. RSC Adv. 2016;6(65):60034–55. https://doi.org/10.1039/C6RA08062F
  69. 69. Mandari V, Devarai SK. Biodiesel production using homogeneous, heterogeneous and enzyme catalysts via transesterification and esterification reactions: a critical review. BioEnergy Res. 2022;15(2):935–61. https://doi.org/10.1007/s12155-021-10333-w
  70. 70. Atadashi IM, Aroua MK, Abdul Aziz AR. Biodiesel separation and purification: a review. Renew Energy. 2011;36(2):437–43. https://doi.org/10.1016/j.renene.2010.07.019
  71. 71. Berrios M, Skelton RL. Comparison of purification methods for biodiesel. Chem Eng J. 2008;144(3):459–65. https://doi.org/10.1016/j.cej.2008.07.019
  72. 72. Yang F, Hanna MA, Sun R. Value-added uses for crude glycerol—a byproduct of biodiesel production. Biotechnol Biofuels. 2012;5(1):13. https://doi.org/10.1186/1754-6834-5-13
  73. 73. Knothe G, Razon LF. Biodiesel fuels. Prog Energy Combust Sci. 2017;58:36–59. https://doi.org/10.1016/j.pecs.2016.08.001
  74. 74. Moser BR. Biodiesel stability and degradation mechanisms. Fuel Process Technol. 2022;229:107160.
  75. 75. Ahamed MI, Boddula R, Rezakazemi M, editors. Biodiesel Technology and Applications. Hoboken (NJ): John Wiley & Sons; 2021.
  76. 76. Thangaraj B, Solomon PR, Muniyandi B, Ranganathan S, Lin L. Catalysis in biodiesel production—a review. Clean Energy. 2019;3(1):2–23. https://doi.org/10.1093/ce/zky020
  77. 77. Orege JI, Oderinde O, Kifle GA, Ibikunle AA, Raheem SA, Ejeromedoghene O, et al. Recent advances in heterogeneous catalysis for green biodiesel production by transesterification. Energy Convers Manag. 2022;258:115406. https://doi.org/10.1016/j.enconman.2022.115406
  78. 78. Ban L, Wu D, Sun D, Zhou H, Wang H, Zhang H, et al. Sustainable production of biofuels from biomass feedstocks using modified montmorillonite catalysts. ChemSusChem. 2025;18(1):e202401025. https://doi.org/10.1002/cssc.202401025
  79. 79. Zheng B, Chen L, He L, Wang H, Li H, Zhang H, et al. Facile synthesis of chitosan-derived sulfonated solid acid catalysts for realizing highly effective production of biodiesel. Ind Crops Prod. 2024;210:118058. https://doi.org/10.1016/j.indcrop.2024.118058
  80. 80. Wei Z, Xu C, Li B. Application of waste eggshell as low-cost solid catalyst for biodiesel production. Bioresour Technol. 2009;100(11):2883–5. https://doi.org/10.1016/j.biortech.2008.12.039
  81. 81. Kaur N, Kishore D. Montmorillonite: an efficient, heterogeneous and green catalyst for organic synthesis. J Chem Pharm Res. 2012;4(2):991–1015.
  82. 82. Kozhevnikov IV. Sustainable heterogeneous acid catalysis by heteropoly acids. J Mol Catal A Chem. 2007;262(1–2):86–92. https://doi.org/10.1016/j.molcata.2006.08.072
  83. 83. Liu J, Wang Y, Dai Z, Jia CQ, Yang L, Liu J, et al. Recent advances in zeolite-based catalysts for volatile organic compounds decontamination by thermal catalytic oxidation. Sep Purif Technol. 2024;330:125339. https://doi.org/10.1016/j.seppur.2023.125339
  84. 84. Burange AS, Gopinath CS. Catalytic applications of hydrotalcite and related materials in multi-component reactions: concepts, challenges and future scope. Sustain Chem Pharm. 2021;22:100458. https://doi.org/10.1016/j.scp.2021.100458
  85. 85. Nayak RR, Khairun HS, Singhal R, Bharadwaj AS, Gupta NK. Waste-derived catalysts for sustainable biodiesel production: current status on catalyst development and future prospectives. J Indian Inst Sci. 2024;104(4):841–68. https://doi.org/10.1007/s41745-024-00439-3
  86. 86. Awogbemi O, Von Kallon DV, Aigbodion VS. Trends in the development and utilization of agricultural wastes as heterogeneous catalyst for biodiesel production. J Energy Inst. 2021;98:244–58. https://doi.org/10.1016/j.joei.2021.06.017
  87. 87. Sharma M, Khan AA, Puri SK, Tuli DK. Wood ash as a potential heterogeneous catalyst for biodiesel synthesis. Biomass Bioenergy. 2012;41:94–106. https://doi.org/10.1016/j.biombioe.2012.02.017
  88. 88. Thangaraj B, Piraman S. Heteropoly acid coated ZnO nanocatalyst for Madhuca indica biodiesel synthesis. Biofuels. 2016;7(1):13–20. https://doi.org/10.1080/17597269.2015.1118776
  89. 89. Chouhan APS, Sarma AK. Biodiesel production from Jatropha curcas L. oil using Lemna perpusilla Torrey ash as heterogeneous catalyst. Biomass Bioenergy. 2013;55:386–9. https://doi.org/10.1016/j.biombioe.2013.02.009
  90. 90. Sarma AK, Kumar P, Aslam M, Chouhan AP. Preparation and characterization of Musa balbisiana Colla underground stem nanomaterial for biodiesel production under elevated conditions. Catal Lett. 2014;144(7):1344–53. https://doi.org/10.1007/s10562-014-1206-8
  91. 91. John M, Abdullah MO, Hua TY, Nolasco-Hipólito C. Techno-economical and energy analysis of sunflower oil biodiesel synthesis assisted with waste ginger leaves-derived catalysts. Renew Energy. 2021;168:815–28. https://doi.org/10.1016/j.renene.2020.12.100
  92. 92. Etim AO, Eloka-Eboka AC, Musonge P. Potential of Carica papaya peels as effective biocatalyst in the optimized parametric transesterification of used vegetable oil. Environ Eng Res. 2021;26(4):200299. https://doi.org/10.4491/eer.2020.299
  93. 93. Falowo OA, Oloko-Oba MI, Betiku E. Biodiesel production intensification via microwave irradiation-assisted transesterification of oil blend using nanoparticles from elephant-ear tree pod husk as a base heterogeneous catalyst. Chem Eng Process Process Intensif. 2019;140:157–70. https://doi.org/10.1016/j.cep.2019.04.010
  94. 94. Han R, Wang Y, Xing S, Pang C, Hao Y, Song C, et al. Progress in reducing calcination reaction temperature of calcium-looping CO₂ capture technology: a critical review. Chem Eng J. 2022;450:137952. https://doi.org/10.1016/j.cej.2022.137952
  95. 95. Samberger C. The role of water circularity in the food-water-energy nexus and climate change mitigation. Energy Nexus. 2022;6:100061. https://doi.org/10.1016/j.nexus.2022.100061
  96. 96. Wang J, Chen Y, Wang X, Cao F. Aluminum dodecatungstophosphate (Al₀.₉H₀.₃PW₁₂O₄₀) nanotube as a solid acid catalyst for one-pot production of biodiesel from waste cooking oil. BioResources. 2009;4(4):1303–14. https://doi.org/10.15376/biores.4.4.1477-1486
  97. 97. Wolski L, Nowaczyk G, Jurga S, Ziolek M. Influence of co-precipitation agent on the structure, texture and catalytic activity of Au-CeO₂ catalysts in low-temperature oxidation of benzyl alcohol. Catalysts. 2021;11(5):641. https://doi.org/10.3390/catal11050641
  98. 98. Amal R, Usman M. A review of breakthroughs in biodiesel production with transition and non-transition metal-doped CaO nanocatalysts. Biomass Bioenergy. 2024;184:107158. https://doi.org/10.1016/j.biombioe.2024.107158
  99. 99. Munyentwali A, Li H, Yang Q. Review of advances in bifunctional solid acid/base catalysts for sustainable biodiesel production. Appl Catal A Gen. 2022;633:118525. https://doi.org/10.1016/j.apcata.2022.118525
  100. 100. Buasri A, Sirikoom P, Pattane S, Buachum O, Loryuenyong V. Process optimization of biodiesel from used cooking oil in a microwave reactor: a case of machine learning and Box-Behnken design. ChemEngineering. 2023;7(4):65. https://doi.org/10.3390/chemengineering7040065
  101. 101. Vinayaka AS, Mahanty B, Rene ER, Behera SK. Biodiesel production by transesterification of a mixture of pongamia and neem oils. Biofuels. 2021;12(2):197–205. https://doi.org/10.1080/17597269.2018.1464874
  102. 102. Choksi H, Pandian S, Gandhi YH, Deepalakshmi S. Studies on production of biodiesel from Madhuca indica oil using a catalyst derived from cotton stalk. Energy Sources Part A Recover Util Environ Eff. 2021;43(24):3424–33. https://doi.org/10.1080/15567036.2019.1632985
  103. 103. Akinfalabi SI, Rashid U, Ngamcharussrivichai C, Nehdi IA. Synthesis of reusable biobased nano-catalyst from waste sugarcane bagasse for biodiesel production. Environ Technol Innov. 2020;18:100788. https://doi.org/10.1016/j.eti.2020.100788
  104. 104. Aziz A, Shah SS, Kashem A. Preparation and utilization of jute-derived carbon: a short review. Chem Rec. 2020;20(9):1074–98. https://doi.org/10.1002/tcr.202000071
  105. 105. Elabadagama RY, Gunawardena S, Thushara D. Tea waste derived heterogeneous acid catalyst for esterification of free fatty acids in biodiesel production. In: 2020 From Innovation to Impact (FITI). IEEE; 2020. p. 1–5. https://doi.org/10.1109/FITI52050.2020.9424897
  106. 106. Thushari I, Babel S. Sustainable utilization of waste palm oil and sulfonated carbon catalyst derived from coconut meal residue for biodiesel production. Bioresour Technol. 2018;248:199–203. https://doi.org/10.1016/j.biortech.2017.06.106
  107. 107. Thushari I, Babel S, Samart C. Biodiesel production in an autoclave reactor using waste palm oil and coconut coir husk derived catalyst. Renew Energy. 2019;134:125–34. https://doi.org/10.1016/j.renene.2018.11.030
  108. 108. Gohain M, Laskar K, Phukon H, Bora U, Kalita D, Deka D. Towards sustainable biodiesel and chemical production: multifunctional use of heterogeneous catalyst from littered Tectona grandis leaves. Waste Manag. 2020;102:212–21. https://doi.org/10.1016/j.wasman.2019.10.049
  109. 109. Sahu O. Characterisation and utilization of heterogeneous catalyst from waste rice straw for biodiesel conversion. Fuel. 2021;287:119543. https://doi.org/10.1016/j.fuel.2020.119543
  110. 110. Olatundun EA, Borokini OO, Betiku E. Cocoa pod husk–plantain peel blend as a novel green heterogeneous catalyst for renewable and sustainable honne oil biodiesel synthesis: a case of biowastes-to-wealth. Renew Energy. 2021;166:163–75. https://doi.org/10.1016/j.renene.2020.11.131
  111. 111. Odude VO, Adesina AJ, Oyetunde OO, Adeyemi OO, Ishola NB, Etim AO, et al. Application of agricultural waste-based catalysts to transesterification of esterified palm kernel oil into biodiesel: a case of banana fruit peel versus cocoa pod husk. Waste Biomass Valor. 2019;10(4):877–88. https://doi.org/10.1007/s12649-017-0152-2
  112. 112. Kamel DA, Farag HA, Amin NK, Zatout AA, Ali RM. Smart utilization of Jatropha curcas Linnaeus seeds for biodiesel production: optimization and mechanism. Ind Crops Prod. 2018;111:407–13. https://doi.org/10.1016/j.indcrop.2017.10.029
  113. 113. Dai YM, Chen KT, Wang YJ, Chen CC. Application of peanut husk ash as a low-cost solid catalyst for biodiesel production. Int J Chem Eng Appl. 2014;5(3):276–80. https://doi.org/10.7763/IJCEA.2014.V5.393
  114. 114. Zhao C, Yang L, Xing S, Luo W, Wang Z, Lv P. Biodiesel production by a highly effective renewable catalyst from pyrolytic rice husk. J Clean Prod. 2018;199:772–80. https://doi.org/10.1016/j.jclepro.2018.07.242
  115. 115. Yadav P, Dixit Y, Asnani H, Sharma AK. Exploration of ethanologenic bacteria from termite gut for bioethanol production. Biomass Convers Biorefin. 2025;15(17):24389–402. https://doi.org/10.1007/s13399-024-05935-1
  116. 116. Tan YH, Abdullah MO, Nolasco-Hipólito C, Taufiq-Yap YH. Waste ostrich- and chicken-eggshells as heterogeneous base catalyst for biodiesel production from used cooking oil: catalyst characterization and biodiesel yield performance. Appl Energy. 2015;160:58–70. https://doi.org/10.1016/j.apenergy.2015.09.023
  117. 117. Chung ZL, Tan YH, San Chan Y, Kansedo J, Mubarak NM, Ghasemi M, et al. Life cycle assessment of waste cooking oil for biodiesel production using waste chicken eggshell-derived CaO as catalyst via transesterification. Biocatal Agric Biotechnol. 2019;21:101317. https://doi.org/10.1016/j.bcab.2019.101317
  118. 118. Cherubini F. The biorefinery concept: using biomass instead of oil for producing energy and chemicals. Energy Convers Manag. 2010;51(7):1412–21. https://doi.org/10.1016/j.enconman.2010.01.015
  119. 119. Hafid HS, Omar FN, Abdul Rahman NA, Wakisaka M. Innovative conversion of food waste into biofuel in integrated waste management system. Crit Rev Environ Sci Technol. 2022;52(19):3453–92. https://doi.org/10.1080/10643389.2021.1923976
  120. 120. Lange L, Connor KO, Arason S, Bundgård-Jørgensen U, Canalis A, Carrez D, et al. Developing a sustainable and circular bio-based economy in EU: by partnering across sectors, upscaling and using new knowledge faster, and for the benefit of climate, environment & biodiversity, and people & business. Front Bioeng Biotechnol. 2021;8:619066. https://doi.org/10.3389/fbioe.2020.619066
  121. 121. Ao S, Changmai B, Vanlalveni C, Chhandama MV, Wheatley AE, Rokhum SL, et al. Biomass waste-derived catalysts for biodiesel production: recent advances and key challenges. Renew Energy. 2024;223:120031. https://doi.org/10.1016/j.renene.2024.120031
  122. 122. International Energy Agency. Renewables 2023: Analysis and forecast to 2028. Paris: International Energy Agency; 2024.
  123. 123. Magagula LP. Synthesis and characterization of agricultural waste carbon-based structures for application in sensing [master's thesis]. Johannesburg (South Africa): University of the Witwatersrand; 2022.
  124. 124. Kang S, Kim H, Chung YH. Recent developments of nano-structured materials as the catalysts for oxygen reduction reaction. Nano Converg. 2018;5(1):13. https://doi.org/10.1186/s40580-018-0144-3
  125. 125. Panda S, Biswas CK, Paul S. Production of biodiesel from industrial sludge: recent progress, challenges, perspective. In: Recent Trends in Management and Utilization of Industrial Sludge. Cham: Springer; 2024. p. 337–57. https://doi.org/10.1007/978-3-031-58456-5_12

Downloads

Download data is not yet available.