Biodiesel synthesis using K2CO3/Al-O-Si aerogel catalysts
Author(s) -
Ivana Lukić,
Jugoslav Krstić,
Sandra Glišić,
Dušan Jovanović,
Dejan Skala
Publication year - 2010
Publication title -
journal of the serbian chemical society
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.227
H-Index - 45
eISSN - 1820-7421
pISSN - 0352-5139
DOI - 10.2298/jsc090707047l
Subject(s) - methanol , catalysis , potassium hydroxide , sunflower oil , aerogel , biodiesel , biodiesel production , nuclear chemistry , leaching (pedology) , potassium , physisorption , fourier transform infrared spectroscopy , chemistry , transesterification , potassium carbonate , materials science , organic chemistry , chemical engineering , biochemistry , environmental science , soil science , engineering , composite material , soil water
In this study, catalysts for fatty acid methyl esters (FAME or biodiesel) synthesis with K 2 CO 3 as the active component on an alumina/silica support were synthesized using the sol—gel method, which was followed by drying the "dense" wet gels with supercritical carbon dioxide to obtain the aerogels. The prepared catalysts were characterized by XRD analysis, FTIR spectroscopy and N 2 physisorption at 77 K, and tested in the methanolysis of sunflower oil. The effects of reaction variables, such as reaction time, temperature and methanol to oil molar ratio, on the yield of FAME were investigated. The aerogel catalysts with K 2 CO 3 as the active component on an alumina/silica support exhibited good activity in the methanolysis of sunflower oil. The leaching of potassium when the catalyst was in contact with pure methanol under the working conditions of methanolysis was also tested in this study, indicating that it occurred only at higher temperatures, while at lower ones, it was negligible.
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