Page 49 - AJWEP-22-5
P. 49
Heterogeneous catalysts for biodiesel production
191. Saetiao P, Kongrit N, Jitjamnong J, Direksil C, doi: 10.1016/j.fuel.2021.120887
Cheng PCK, Khantikulanon N. Enhancing sustainable 202. Mutalib AA, Ibrahim ML, Matmin J, et al. SiO2-rich
production of fatty acid methyl ester from palm oil sugar cane bagasse ash catalyst for transesterification of
using bio-based heterogeneous catalyst: Process palm oil. BioEnergy Res. 2020;13:986-997.
simulation and techno-economic analysis. CS Omega. doi: 10.1007/s12155-020-10119-6
2023;8(33):30598-30611. 203. Wang Y, Zhang M, Ding X. Biodiesel production from
doi: 10.1021/acsomega.3c04209 soybean oil using modified calcium loaded on rice husk
192. Khan HM, Iqbal T, Mujtaba MA, Soudagar MEM, activated carbon as a low-cost basic catalyst. Sep Sci
Veza I, Fattah IMR. Microwave assisted biodiesel Technol. 2017;53:807-813.
production using heterogeneous catalysts. Energies. doi: 10.1080/01496395.2017.1374411
2021;14:8135. 204. Roschat W, Siritanon T, Yoosuk B, Promarak V. Rice
doi: 10.3390/en14238135 husk-derived sodium silicate as a highly efficient and
193. Kordi M, Farrokhi N, Martin I, Canul P, Ahmadikhah A. low-cost basic heterogeneous catalyst for biodiesel
Rice husk at a Glance: From agro-industrial to modern production. Energy Conv Manag. 2016;119:453-462.
applications. Rice Sci. 2024;31(1):14-32. doi: 10.1016/j.enconman.2016.04.071
doi: 10.1016/j.rsci.2023.08.005 205. Karydogianni S, Roussis L, Kakabouki L, et al. Seed
194. Yuan S, Hou Y, Liu S, Ma Y. A comparative study on oil content, oil yield and fatty acids composition of
rice husk, as agricultural waste, in the production of black mustard [Brassica nigra (L.) Koch] in response to
silica nanoparticles via different methods. Materials. fertilization and plant density. Notulae Botanicae Horti
2024;17:1271. Agrobotanici Cluj Napoca. 2023;51:13061.
doi: 10.3390/ma17061271 doi: 10.15835/nbha51113061
195. Miyuranga KA, Thilakarathne D, Arachchige US, 206. Perveen R, Butt MS, Anjum FM, Ahmad S,
Jayasinghe RA, Weerasekara NA. Catalysts for El-Ghorab AD. Improvement in stability and frying
biodiesel production: A review. Asian J Chem. behavior of sesame (Sesamum indicum) oil; Blending
2021;33(8):1985-1999. with sunflower oil. Aljouf Sci Eng J. 2014;1:15-22.
doi: 10.14233/ajchem.2021.23332 doi: 10.12816/0011027
196. Li C, Hu X, Feng W, Wu B, Wu K. A supported solid 207. Miladinović MR, Zdujić MV, Veljović DN, et al.
base catalyst synthesized from green biomass ash for Valorization of walnut shell ash as a catalyst for biodiesel
biodiesel production. Util Environ Eff. 2017;40:142-147. production. Renew Energy. 2020;147:1033-1043.
doi: 10.1080/15567036.2017.1405121 doi: 10.1016/j.renene.2019.09.056
197. Dhawane SH, Kumar T, Halder G. Recent advancement 208. Tudin DZ, Rizalman AN, Asrah H. Performance of
and prospective of heterogeneous carbonaceous palm oil fuel ash and rice husk ash based geopolymer
catalysts in chemical and enzymatic transformation of mortar. E3S Web Conf. 2018;65:02011.
biodiesel. Energy Conv Manag. 2018;167:176-202. doi: 10.1051/e3sconf/20186502011
doi: 10.1016/j.enconman.2018.04.073 209. Farida S, Jenie RI, Fakhrudin N. Calophyllum
198. Chen C, Liu J, Yao J, Qi Y, Yan B. Biodiesel production inophyllum: A comprehensive analysis of its
from waste cooking oil in a magnetically fluidized bed ethnobotanical, phytochemical, and pharmacological
reactor using whole-cell biocatalysts. Energy Conv properties. Majalah Obat Tradit. 2024;29:121.
Manag. 2017;138(4):556-564. doi: 10.22146/mot.87488
doi: 10.1016/j.enconman.2017.02.036 210. Basumatary S, Nath B, Das B, Kalita P, Basumatary B.
199. Nabora CS, Kingondu CK, Kivevele TT. Tamarindus Utilization of renewable and sustainable basic
indica fruit shell ash: A low cost and effective catalyst heterogeneous catalyst from Heteropanax fragrans
for biodiesel production from Parinari curatellifolia (Kesseru) for effective synthesis of biodiesel from
seeds oil. SN Appl Sci. 2019;1:253. Jatropha curcas oil. Fuel. 2021;286:119357.
doi: 10.1007/s42452-019-0256-3 doi: 10.1016/j.fuel.2020.119357
200. Gnanasekaran S, Nordin NA, Hamidi NM, 211. Zafar M, Imran SM, Iqbal I, et al. Graphene-based
Shariffuddin JH. Effect of alkaline treatment on the polymer nanocomposites for energy applications:
characteristics of pineapple leaves fibre and PALF/PP Recent advancements and future prospects. Results
biocomposite. J Mech Eng Sci. 2021;15:8518-8528. Physics. 2024;64:107655.
doi: 10.15282/jmes.15.4.2021.05.0671 doi: 10.1016/j.rinp.2024.107655
201. Mares EK, Gonçalves MA, Da Luz PT, Filho GN, 212. Amalina F, Razak AS, Krishnan S, Sulaiman H,
Zamian JR, Conceição LR. Acai seed ash as a novel Zularisam AW, Nasrullah M. Biochar production
basic heterogeneous catalyst for biodiesel synthesis: techniques utilizing biomass waste-derived materials
Optimization of the biodiesel production process. Fuel. and environmental applications - a review. J Hazard
2021;299:120887. Mater Adv. 2022;7:100134.
Volume 22 Issue 5 (2025) 43 doi: 10.36922/AJWEP025130095

