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A Performance Study of Home-Made Co-Immobilized Lipase from Mucor miehei in Polyurethane Foam on The Hydrolysis of Coconut Oil to Fatty Acid

Authors :
Dwina Moentamaria
Maktum Muharja
Tri Widjaja
Arief Widjaja
Source :
Bulletin of Chemical Reaction Engineering & Catalysis, Vol 14, Iss 2, Pp 391-403 (2019)
Publication Year :
2019
Publisher :
Masyarakat Katalis Indonesia - Indonesian Catalyst Society (MKICS), 2019.

Abstract

Bio‐based fatty acids (FAs) produced through hydrolysis of natural oils and fats are promising chemical feedstocks for increasing the economic value of renewable raw materials. In this work, lecithin, gelatin, PEG, and MgCl2 were employed as the co-immobilized material of crude lipase Mucor miehei immobilization on the polyurethane foam (PUF) matrix for hydrolysis of coconut oil to Free Fatty Acid (FFA). The unconventional immobilized technique was used through cross-linking and covalent bond. Single factor analysis and response surface method were utilized to determine the optimum conditions of the hydrolysis reaction. After optimization, co-immobilized lipase was examined for storage stability at a temperature of 4°C and reusability performance. The optimum conditions for coconut oil hydrolysis were obtained on the co-immobilized-PUF ratio, water-oil ratio, and reaction time of 20.17 w/w, 4.45 w/w, and 20 h, respectively. Under these conditions, the acid value as lauric acid enhanced 573% to 3.21 mg KOH/g oil. Storage stability attained through remaining activity on free lipase, PUF-lipase, PUF-co-immobilized-lipase were 9.89%, 42.3%, and 91.88%, respectively. In this study, the application of PUF-co-immobilized lipase in hydrolysis reactions can be reused up to 5 times. Characteristics of the addition of co-immobilized lipase have been analyzed using Fourier Transform Infra Red (FTIR) and Scanning Electron Microscope (SEM), showing the presence of functional groups binding and the changes in the surface matrix structure.

Details

Language :
English, Indonesian
ISSN :
19782993
Volume :
14
Issue :
2
Database :
Directory of Open Access Journals
Journal :
Bulletin of Chemical Reaction Engineering & Catalysis
Publication Type :
Academic Journal
Accession number :
edsdoj.5710504d1eef4028b153ff4ad86eab9b
Document Type :
article
Full Text :
https://doi.org/10.9767/bcrec.14.2.3848.391-403