TY - JOUR
T1 - Developing saponite supported cobalt–molybdenum catalysts for upgrading squalene, a hydrocarbon from the microalgae Botryococcus braunii
AU - Garciano, Leonito O. II
AU - Tran, Nguyen H.
AU - Kannangara, G. S. Kamali
AU - Milev, Adriyan S.
AU - Wilson, Michael A.
AU - Volk, Herbert
PY - 2014
Y1 - 2014
N2 - The long chain hydrocarbons derived from the microalgae Botryococcus braunii are potential source of liquid biofuels for oil refineries. However, there is room for catalyst development on treating these new oil sources since they differ from mineral oils. In this work, the cobalt-molybdenum catalysts supported on the phyllosilicate saponite (Al2O3-SiO2) have been used for upgrading squalene (C30H50) a hydrocarbon related to B. braunii oil. The saponite supported catalysts were synthesised with varying aluminium to silicon (Al:Si) ratios of 1:2, 1:10, 1:20, 1:30 and 1:50 using a non-hydrothermal method. The cobalt and molybdenum (Co:Mo) ratio remained unchanged at 5:1 during the synthesis. Characterisation of the saponite supported catalysts was carried out using X-ray diffraction (XRD), nitrogen gas adsorption, X-ray photoelectron spectroscopy (XPS) and infrared (IR) spectroscopy. It appears that the catalysts with the Al:Si ratios of 1:2 and 1:10 incorporate aluminium into tetrahedral and octahedral sites. When the Al:Si ratios are reduced from 1:20 to 1:50, the aluminium occupies octahedral sites only. Catalytic upgrading of squalene using these catalysts was carried out at the temperature of 400°C with Formier gas (5% H2:95% N2). Nuclear magnetic resonance (NMR) and gas chromatography-mass spectrometry (GC-MS) analysis showed the formation of pentacyclic triterpenes with a double bond. In addition, the 1:2 saponite supported catalyst has hydrogenation, hydrocracking and esterification abilities by virtue of its capacity to adsorbed exchangeable protons and carboxylate groups. Removal of the adsorbed exchangeable protons caused structural collapse during the reaction for some catalysts. Nevertheless the 1:20, 1:30 and 1:50 saponite supported catalysts remained stable. Our results provide an understanding of reactions of saponites with squalene and the potential of the saponite supported catalysts in biofuel upgrading.
AB - The long chain hydrocarbons derived from the microalgae Botryococcus braunii are potential source of liquid biofuels for oil refineries. However, there is room for catalyst development on treating these new oil sources since they differ from mineral oils. In this work, the cobalt-molybdenum catalysts supported on the phyllosilicate saponite (Al2O3-SiO2) have been used for upgrading squalene (C30H50) a hydrocarbon related to B. braunii oil. The saponite supported catalysts were synthesised with varying aluminium to silicon (Al:Si) ratios of 1:2, 1:10, 1:20, 1:30 and 1:50 using a non-hydrothermal method. The cobalt and molybdenum (Co:Mo) ratio remained unchanged at 5:1 during the synthesis. Characterisation of the saponite supported catalysts was carried out using X-ray diffraction (XRD), nitrogen gas adsorption, X-ray photoelectron spectroscopy (XPS) and infrared (IR) spectroscopy. It appears that the catalysts with the Al:Si ratios of 1:2 and 1:10 incorporate aluminium into tetrahedral and octahedral sites. When the Al:Si ratios are reduced from 1:20 to 1:50, the aluminium occupies octahedral sites only. Catalytic upgrading of squalene using these catalysts was carried out at the temperature of 400°C with Formier gas (5% H2:95% N2). Nuclear magnetic resonance (NMR) and gas chromatography-mass spectrometry (GC-MS) analysis showed the formation of pentacyclic triterpenes with a double bond. In addition, the 1:2 saponite supported catalyst has hydrogenation, hydrocracking and esterification abilities by virtue of its capacity to adsorbed exchangeable protons and carboxylate groups. Removal of the adsorbed exchangeable protons caused structural collapse during the reaction for some catalysts. Nevertheless the 1:20, 1:30 and 1:50 saponite supported catalysts remained stable. Our results provide an understanding of reactions of saponites with squalene and the potential of the saponite supported catalysts in biofuel upgrading.
UR - http://handle.uws.edu.au:8081/1959.7/538361
U2 - 10.1016/j.ces.2013.12.024
DO - 10.1016/j.ces.2013.12.024
M3 - Article
SN - 0009-2509
VL - 107
SP - 302
EP - 310
JO - Chemical Engineering Science
JF - Chemical Engineering Science
ER -