Open Access
Issue
EPJ Web Conf.
Volume 363, 2026
International Conference on Low-Carbon Development and Materials for Solar Energy (ICLDMS’26)
Article Number 01014
Number of page(s) 13
Section Energy Materials
DOI https://doi.org/10.1051/epjconf/202636301014
Published online 16 April 2026
  1. M. A. Asokan, S. S. Prabu, A. Bollu, M. A. Reddy, A. Ram, and D. S. Sukhadia, “Emission and performance behavior of hemp seed oil biodiesel/diesel blends in DI diesel engine,” Materials Today: Proceedings, vol. 46, pp. 81278132, (2021), doi: 10.1016/j.matpr.2021.03.064. [Google Scholar]
  2. H. Venu, V. D. Raju, and L. Subramani, “Combined effect of influence of nano additives, combustion chamber geometry and injection timing in a DI diesel engine fuelled with ternary (diesel-biodiesel-ethanol) blends,” Energy, vol. 174, pp. 386–406, May (2019), doi: 10.1016/j.energy.2019.02.163. [Google Scholar]
  3. N. Duarte Souza Alvarenga Santos, V Ruckert Roso, A. C. Teixeira Malaquias, and J. G. Coelho Baeta, “Internal combustion engines and biofuels: Examining why this robust combination should not be ignored for future sustainable transportation,” Renewable and Sustainable Energy Reviews, vol. 148, p. 111292, Sep. (2021), doi: 10.1016/j.rser.2021.111292. [Google Scholar]
  4. F. Mayasari and R. Dalimi, “Vegetable oil based biodiesel feedstock potential in Indonesia,” in 2014 Makassar International Conference on Electrical Engineering and Informatics (MICEEI), Makassar, Indonesia: IEEE, Nov. 2014, pp. 37–41. doi: 10.1109/MICEEI.2014.7067306. [Google Scholar]
  5. N. Anil et al., “Advancements in sustainable biodiesel production: A comprehensive review of bio-waste derived catalysts,” Energy Conversion and Management, vol. 318, p. 118884, Oct. 2024, doi: 10.1016/j.enconman.2024.118884. [Google Scholar]
  6. M. Mofijur, A. E. Atabani, H. H. Masjuki, M. A. Kalam, and B. M. Masum, “A study on the effects of promising edible and non-edible biodiesel feedstocks on engine performance and emissions production: A comparative evaluation,” Renewable and Sustainable Energy Reviews, vol. 23, pp. 391404, Jul. (2013), doi: 10.1016/j.rser.2013.03.009. [Google Scholar]
  7. Y. Chen, J. Zhang, Z. Zhang, W. Zhong, Z. Zhao, and J. Hu, “Utilization of renewable biodiesel blends with different proportions for the improvements of performance and emission characteristics of a diesel engine,” Heliyon, vol. 9, no. 9, p. e19196, Sep. (2023), doi: 10.1016/j.heliyon.2023.e19196. [Google Scholar]
  8. S. Sun, J. Guo, and X. Chen, “Biodiesel preparation from Semen Abutili (Abutilon theophrasti Medic.) seed oil using low-cost liquid lipase Eversa® transform 2.0 as a catalyst,” Industrial Crops and Products, vol. 169, p. 113643, Oct. (2021), doi: 10.1016/j.indcrop.2021.113643. [Google Scholar]
  9. M. Anish et al., “Enhancing compression ignition engine efficiency and reducing noise emissions: The impact of nanoparticle enhanced biodiesel blends,” Ain Shams Engineering Journal, vol. 16, no. 10, p. 103507,Oct.(2025), doi: 10.1016/j.asej.2025.103507. [Google Scholar]
  10. Prabhahar, M., Prakash, S., Dharsan, P., Elumalai, P. V., Xueyi, F., & Hasan, N. (2025). Optimization of thermal barrier coating with induced copper oxide nanoparticles in CI engine using algae methyl ester as fuel. Scientific Reports, 15(1), 21221. doi:10.1038/s41598-025-02711-7 [Google Scholar]
  11. S. Zhang, L. Zhang, G. Xu, F. Li, and X. Li, “A review on biodiesel production from microalgae: Influencing parameters and recent advanced technologies,” Front. Microbiol., vol. 13, p. 970028, Jul. (2022), doi: 10.3389/fmicb.2022.970028. [Google Scholar]
  12. T. Sundaram et al., “Bioengineering strategies of microalgae biomass for biofuel production: recent advancement and insight,” Bioengineered, vol. 14, no. 1, p. 2252228, Dec. (2023), doi: 10.1080/21655979.2023.2252228. [Google Scholar]
  13. A. T. Hoang et al., “Biofuel production from microalgae: challenges and chances,” Phytochem Rev, vol. 22, no. 4, pp. 1089–1126, Aug. (2023), doi: 10.1007/s11101-022-09819-y. [Google Scholar]
  14. N. Mallick, S. Mandal, A. K. Singh, M. Bishai, and A. Dash, “Green microalga Chlorella vulgaris as a potential feedstock for biodiesel,” J of Chemical Tech & Biotech, vol. 87, no. 1, pp. 137–145, Jan. (2012), doi: 10.1002/jctb.2694. [Google Scholar]
  15. Avinash Kumar, Rupesh Kumar Tripathi, Shivesh Ranjan, Abu Shadab Hasan, and Galgotias university, “Performance and Emission Analysis of Microalgae Biofuel-Diesel Blends in Internal Combustion Engine,” IJERT, vol. V9, no. 04, p. IJERTV9IS040396, Apr. (2020), doi: 10.17577/IJERTV9IS040396. [Google Scholar]
  16. M. Mofijur et al., “Impact of nanoparticle-based fuel additives on biodiesel combustion: An analysis of fuel properties, engine performance, emissions, and combustion characteristics,” Energy Conversion and Management: X, vol. 21, p. 100515, Jan. (2024), doi: 10.1016/j.ecmx.2023.100515. [Google Scholar]
  17. P. V. Elumalai, M. Parthasarathy, M. Murugan, A. Saravanan, and C. Sivakandhan, “Effect of Cerium Oxide Nanoparticles to Improve the Combustion Characteristics of Palm Oil Nano Water Emulsion using Low Heat Rejection Engine,” International Journal of Green Energy, vol. 18, no. 14, pp. 14821496, Nov. (2021), doi: 10.1080/15435075.2021.1904947. [Google Scholar]
  18. E. P.V, “Graphene Oxide Nanoparticle Blended Tamanu Methyl Ester as a Promising Alternative Fuel for Unmodified Compression Ignition Engine,” Int. Res. J. multidiscip. Technovation, pp. 151–164, Jan. 2025, doi: 10.54392/irjmt25111. [Google Scholar]
  19. E. P.V, “Graphene Oxide Nanoparticle Blended Tamanu Methyl Ester as a Promising Alternative Fuel for Unmodified Compression Ignition Engine,” Int. Res. J. multidiscip. Technovation, pp. 151–164, Jan. 2025, doi: 10.54392/irjmt25111. [Google Scholar]
  20. B. K. M. Mahgoub, “Effect of nano-biodiesel blends on CI engine performance, emissions and combustion characteristics - Review,” Heliyon, vol. 9, no. 11, p. e21367, Nov. (2023), doi: 10.1016/j.heliyon.2023.e21367. [Google Scholar]
  21. R. Dhairiyasamy, E. Murugesan, D. Varshney, and S. Singh, “Enhancing biodiesel performance: A comparative study of metal oxide nanoparticles on combustion efficiency and emission reduction,” Results in Chemistry, vol. 19, p. 102923, Jan. (2026), doi: 10.1016/j.rechem.2025.102923. [Google Scholar]
  22. P. V. Elumalai et al., “Analysis of performance, combustion, and emission parameters in a reactivity-controlled combustion ignition (RCCI) engine - an intensive review,” International Journal of Ambient Energy, vol. 43, no. 1, pp. 6839–6848, Dec. (2022), doi: 10.1080/01430750.2022.2056914. [Google Scholar]
  23. A. Savas. R. §ener, S. Uslu, and O. Der, “Experimental study on performance and emission optimization of MgO nanoparticle-enriched 2nd generation biodiesel: A method for employing nanoparticles to improve cleaner diesel combustion,” Journal of the Energy Institute, vol. 120, p. 102024, Jun. (2025), doi: 10.1016/j.joei.2025.102024. [Google Scholar]
  24. L. R. Kunchi, S. K. Bhatti, S. V. P. Lankapalli, and J. Sagari, “Effect of multi ferrites nanoparticles added Terminalia bellirica biodiesel on diesel engine: Combustion, performance, and emission studies,” International Journal of Thermofluids, vol. 22, p. 100652, May (2024), doi: 10.1016/j.ijft.2024.100652. [Google Scholar]
  25. A. M. Ansari, L. A. Memon, M. T. Ghannam, and M. Y. E. Selim, “Impact of biodiesel blended fuel with nanoparticles on performance and noise emission in compression ignition engine,” International Journal of Thermofluids, vol. 19, p. 100390, Aug. (2023), doi: 10.1016/j.ijft.2023.100390. [Google Scholar]
  26. K. Simhadri, P. S. Rao, and M. Paswan, “Improving the combustion and emission performance of a diesel engine with TiO2 nanoparticle blended Mahua biodiesel at different injection pressures,” International Journal of Thermofluids, vol. 21, p. 100563, Feb. (2024), doi: 10.1016/j.ijft.2024.100563. [Google Scholar]
  27. Y. L. Alehegn, D. S. Zeleke, S. M. Hailegorgis, and Y. L. Alehegn, “Effect of Al2O3 nano-particle on the performance and emission characteristics of millettia ferruginea (Berbera) biodiesel blend fuel on single cylinder compression ignition engine,” Next Energy, vol. 8, p. 100344, Jul. (2025), doi: 10.1016/j.nxener.2025.100344. [Google Scholar]
  28. M. A. Mujtaba et al., “Effect of alcoholic and nanoparticles additives on tribological properties of diesel-palm-sesame-biodiesel blends,” Energy Reports, vol. 7, pp. 1162–1171, Nov. (2021), doi: 10.1016/j.egyr.2020.12.009. [Google Scholar]
  29. N. M. Nachippan, V. Balaji, G. Subbiah, R. P. Singh, K. P. K, and A. Smerat, “Performance and emission analysis of cotton seed biodiesel enhanced with nano-MgO as a sustainable fuel in a compression ignition engine,” Results in Engineering, vol. 27, p. 106738, Sep. (2025), doi: 10.1016/j.rineng.2025.106738. [Google Scholar]
  30. A. Munimathan et al., “Performance, combustion, and emission analysis of CeO2 enriched tobacco seed oil biodiesel in CI engines,” Case Studies in Thermal Engineering, vol. 75, p. 107261, Nov. 2025, doi: 10.1016/j.csite.2025.107261. [Google Scholar]
  31. N. H. Mat Yasin, M. A. Mohd Yusop, N. A. A. Awang Kechik, and A. Z. Zahuri, “Composition of fatty acid methyl ester in microalgae Chlorella vulgaris: Comparison between various methods of harvesting, extraction and transesterification,” Materials Today: Proceedings, p. S2214785323022186, Apr. (2023), doi: 10.1016/j.matpr.2023.04.317. [Google Scholar]
  32. P. V. Elumalai, C.-S. Shieh, M. S. Reddy, S. R. Sree, and S. Krishnan, “Sustainable RCCI engine operation with an ANN based novel tri-fuel approach,” Sci Rep, vol. 15, no. 1, p. 27645, Jul. (2025), doi: 10.1038/s41598-025-09984-y. [Google Scholar]

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