Biodiesel production from nonedible feedstocks catalyzed by nanocatalysts: A review

被引:14
作者
Chimezie, Elendu Collins [1 ]
Zhang, Xiaoxiao [1 ]
Djandja, Oraleou Sangue [1 ]
Nonso, Ude Callistus [2 ]
Duan, Pei-Gao [1 ]
机构
[1] Xi An Jiao Tong Univ, Sch Chem Engn & Technol, Shaanxi Key Lab Energy Chem Proc Intensificat, Xian 710049, Shaanxi, Peoples R China
[2] Michael Okpara Univ Agr, Dept Chem Engn, Umuahia, Abia State, Nigeria
基金
中国国家自然科学基金;
关键词
Nonedible feedstocks; Nanocatalyst; Heterogeneous catalysis; Transesterification; Biodiesel; WASTE COOKING OIL; SOYBEAN OIL; TRANSESTERIFICATION REACTION; CASTOR-OIL; HETEROGENEOUS NANOCATALYST; MAGNETIC NANOCATALYSTS; SUPERCRITICAL METHANOL; PERFORMANCE EVALUATION; PROCESS OPTIMIZATION; COMBUSTION SYNTHESIS;
D O I
10.1016/j.biombioe.2022.106509
中图分类号
S2 [农业工程];
学科分类号
0828 ;
摘要
Biodiesel produced from vegetable oil has recently increased in popularity. However, these edible feedstocks (which are the apparent choice of triglycerides) will not be sufficiently sustainable, given the increasing demand for energy and food, and guaranteed inedible feedstocks are needed. Biodiesel can be generated from these alternative feedstocks using various catalysts. Current studies show that nanocatalysts are extensively used for this purpose and are more preferred than usual homogeneous and heterogeneous catalysts. These nanocatalysts exhibit many advantageous features, including efficient separation steps for both products and catalysts, elimination of the quenching process, high catalytic activity, and large surface area, and provide the possibility for reusability. According to recent reports, the use of nonedible oils and nanocatalysts, such as titanium-doped zinc oxide, magnesium oxide-doped magnesium aluminate, zirconium oxide and many others, are potent with an approximately 80-98 wt% yield of biodiesel under optimized conditions, suggesting that this approach is a suitable option for biodiesel synthesis. This review aims to explore the potency of nonedible feedstocks and nanocatalysts for fatty acid methyl ester synthesis. The findings of the most recent published studies are critically summarized. The catalytic reaction mechanism for biodiesel production is highlighted, focusing on the nanocatalysts. Some nonedible seeds have been reported, and their potency for biodiesel production has been assessed in detail.
引用
收藏
页数:15
相关论文
共 126 条
[71]   Biodiesel synthesis from oleic acid by nano-catalyst (ZrO2/Al2O3) under high voltage conditions [J].
Mahdavi, Mohmmad ;
Abedini, Ebrahim ;
Darabi, Amir Hosein .
RSC ADVANCES, 2015, 5 (68) :55027-55032
[72]   Optimization of alkali-catalyzed transesterification of Pongamia pinnata oil for production of biodiesel [J].
Meher, L. C. ;
Dharmagadda, Vidya S. S. ;
Naik, S. N. .
BIORESOURCE TECHNOLOGY, 2006, 97 (12) :1392-1397
[73]   Biodiesel from castor oil: A comparison of ethanolysis versus methanolysis [J].
Meneghetti, Simoni M. Plentz ;
Meneghetti, Mario R. ;
Wolf, Carlos R. ;
Silva, Eid C. ;
Lima, Gilvan E. S. ;
Silva, Laelson de Lira ;
Serra, Tatiana M. ;
Cauduro, Fernanda ;
de Oliveira, Lenise G. .
ENERGY & FUELS, 2006, 20 (05) :2262-2265
[74]   Application of TiO2 nanoparticles for eco-friendly biodiesel production from waste olive oil [J].
Mihankhah, Taraneh ;
Delnavaz, Mohammad ;
Khaligh, Nader Ghaffari .
INTERNATIONAL JOURNAL OF GREEN ENERGY, 2018, 15 (02) :69-75
[75]   THE HORSERADISH TREE, MORINGA-PTERYGOSPERMA (MORINGACEAE) - A BOON TO ARID LANDS [J].
MORTON, JF .
ECONOMIC BOTANY, 1991, 45 (03) :318-333
[76]   Electrochemical heavy metal detection, photocatalytic, photoluminescence, biodiesel production and antibacterial activities of Ag-ZnO nanomaterial [J].
Nagaraju, G. ;
Udayabhanu ;
Shivaraj ;
Prashanth, S. A. ;
Shastri, M. ;
Yathish, K. V. ;
Anupama, C. ;
Rangappa, D. .
MATERIALS RESEARCH BULLETIN, 2017, 94 :54-63
[77]   Ethyl biodiesel production from non-edible oils of Balanites aegyptiaca, Azadirachta indica, and Jatropha curcas seeds - Laboratory scale development [J].
Nitiema-Yefanova, Svitlana ;
Coniglio, Lucie ;
Schneider, Raphael ;
Nebie, Roger H. C. ;
Bonzi-Coulibaly, Yvonne L. .
RENEWABLE ENERGY, 2016, 96 :881-890
[78]  
Obadiah A, 2012, DIG J NANOMATER BIOS, V7, P321
[79]   Modeling and optimization of African pear seed oil esterification and transesterification using artificial neural network and response surface methodology comparative analysis [J].
Ofoefule, Akuzuo Uwaoma ;
Esonye, Chizoo ;
Onukwuli, Okechukwu Dominic ;
Nwaeze, Emmanuel ;
Ume, Cyril Sunday .
INDUSTRIAL CROPS AND PRODUCTS, 2019, 140
[80]   Kinetics of African pear seed oil (APO) methanolysis catalyzed by phosphoric acid-activated kaolin clay [J].
Onukwuli, Okechukwu D. ;
Ude, Callistus N. .
APPLIED PETROCHEMICAL RESEARCH, 2018, 8 (04) :299-313