Please use this identifier to cite or link to this item: http://hdl.handle.net/11189/8431
Title: Development of a novel mesoporous biocatalyst derived from Kola nut pod husk for conversion of Kariya seed oil to methyl esters: A case of synthesis, modeling and optimization studies
Authors: Betiku, Eriola 
Okeleye, Adebisi A. 
Ishola, Niyi B. 
Osunleke, Ajiboye S. 
Ojumu, Tunde Victor 
Keywords: Biodiesel;Heterogeneous catalyst;Seed oil;Modeling;Optimization;Response surface methodology
Issue Date: 2019
Publisher: Springer
Source: Betiku, E., Okeleye, A. A., Ishola, N. B. et al. 2019. Development of a novel mesoporous biocatalyst derived from Kola nut pod husk for conversion of Kariya seed oil to methyl esters: A case of synthesis, modeling and optimization studies. Catalysis Letters, 149(7): 1772-1787. [https://doi.org/10.1007/s10562-019-02788-6]
Journal: Catalysis Letters 
Abstract: A base heterogeneous catalyst was prepared from kola nut pod husk which was subsequently applied to conversion of Kariya seed oil (KSO) to produce biodiesel via transesterifcation process. Characterization of the developed catalyst was performed using scanning electron microscope–energy dispersive X-ray (SEM–EDX), X-ray difraction (XRD) and Brunauer– Emmett–Teller (BET) analysis. The central composite design was used to produce 28 experimental conditions employed in investigating the individual and synergetic infuence of the process input parameters viz. methanol/KSO oil molar ratio, catalyst loading level and process reaction time on Kariya oil methyl esters (KOME) yield. The process input parameters examined were optimized using statistical approach through response surface methodology. The characterization of the catalyst developed showed that its catalytic activity was due largely to its high level of K and Ca. The best reaction condition for the transesterifcation process was found to be methanol/KSO molar ratio of 6:1, catalyst loading level of 3 wt% and process reaction time of 75 min at reaction temperature of 65 °C which led to maximum KOME yield of 98.67±0.01 wt%. The results of various statistics employed in testing the model developed indicate that it is accurate and reliable. The study shows that the catalyst can be re-used up to four times.
URI: http://hdl.handle.net/11189/8431
ISSN: 1011-372X‎
1572-879X‎
DOI: https://doi.org/10.1007/s10562-019-02788-6
Appears in Collections:Eng - Journal articles (DHET subsidised)

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