<b>An ab initio study of hydrotreating of thiirene and thiirane on MoS<sub>3</sub>H<sub>3</sub><sup>+</sup> catalytic site</b>

Thiirene and thiirane have been chosen as model molecules representative of products present in crude oil to study the key steps in hydrotreating. The hydrotreating which can be desulfurization, deoxygenation or denitrogenation is the treatment of oil crude products under hydrogen pressure in presen...

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Main Authors: J.B. Mensah, M. Gelize, Y.G.S. Atohoun, C. Pouchan
Format: Article
Language:English
Published: Chemical Society of Ethiopia 2006-12-01
Series:Bulletin of the Chemical Society of Ethiopia
Subjects:
SCF
Online Access:http://www.ajol.info/index.php/bcse/article/view/61412
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spelling doaj-43f9c4ee811943b9ad128c35fe3fadf52020-11-24T23:01:44ZengChemical Society of EthiopiaBulletin of the Chemical Society of Ethiopia1011-39241726-801X2006-12-01202295308<b>An ab initio study of hydrotreating of thiirene and thiirane on MoS<sub>3</sub>H<sub>3</sub><sup>+</sup> catalytic site</b>J.B. MensahM. GelizeY.G.S. AtohounC. PouchanThiirene and thiirane have been chosen as model molecules representative of products present in crude oil to study the key steps in hydrotreating. The hydrotreating which can be desulfurization, deoxygenation or denitrogenation is the treatment of oil crude products under hydrogen pressure in presence of catalysts. This process leads to hydrogenolysis of carbon-heteroatom bond accompanied by heteroatom elimination. The catalytic site used is based on molybdenum disulfide (MoS<sub>2</sub>), which is considered as active phase in the commercial catalysts containing molybdenum atoms. Two steps characterise the desulfurization process: the adsorption and the carbon-sulfur bond cleavage. The thiirene geometry has been destroyed through the cleavage of one of the carbon-sulfur bonds. The calculation results showed that the desulfurization of the thiirene and thiirane do follow a heterolytic process. At the end of process, the reaction pathways are the same with an activation energy which was higher for thiirane than for thiirene. These results confirmed the same catalytic site and molecules obtained in previous works in the EHT method.http://www.ajol.info/index.php/bcse/article/view/61412AdsorptionBond cleavageHydrotreatingDesulfurizationMolybdenum disulfideThiireneThiiraneGeometry OptimisationReaction mechanismReaction pathwayHartree – Fock (HF)SCFDensity Functional Theory (DFT)B<sub>3</sub>LYPLanl2dz
collection DOAJ
language English
format Article
sources DOAJ
author J.B. Mensah
M. Gelize
Y.G.S. Atohoun
C. Pouchan
spellingShingle J.B. Mensah
M. Gelize
Y.G.S. Atohoun
C. Pouchan
<b>An ab initio study of hydrotreating of thiirene and thiirane on MoS<sub>3</sub>H<sub>3</sub><sup>+</sup> catalytic site</b>
Bulletin of the Chemical Society of Ethiopia
Adsorption
Bond cleavage
Hydrotreating
Desulfurization
Molybdenum disulfide
Thiirene
Thiirane
Geometry Optimisation
Reaction mechanism
Reaction pathway
Hartree – Fock (HF)
SCF
Density Functional Theory (DFT)
B<sub>3</sub>LYP
Lanl2dz
author_facet J.B. Mensah
M. Gelize
Y.G.S. Atohoun
C. Pouchan
author_sort J.B. Mensah
title <b>An ab initio study of hydrotreating of thiirene and thiirane on MoS<sub>3</sub>H<sub>3</sub><sup>+</sup> catalytic site</b>
title_short <b>An ab initio study of hydrotreating of thiirene and thiirane on MoS<sub>3</sub>H<sub>3</sub><sup>+</sup> catalytic site</b>
title_full <b>An ab initio study of hydrotreating of thiirene and thiirane on MoS<sub>3</sub>H<sub>3</sub><sup>+</sup> catalytic site</b>
title_fullStr <b>An ab initio study of hydrotreating of thiirene and thiirane on MoS<sub>3</sub>H<sub>3</sub><sup>+</sup> catalytic site</b>
title_full_unstemmed <b>An ab initio study of hydrotreating of thiirene and thiirane on MoS<sub>3</sub>H<sub>3</sub><sup>+</sup> catalytic site</b>
title_sort <b>an ab initio study of hydrotreating of thiirene and thiirane on mos<sub>3</sub>h<sub>3</sub><sup>+</sup> catalytic site</b>
publisher Chemical Society of Ethiopia
series Bulletin of the Chemical Society of Ethiopia
issn 1011-3924
1726-801X
publishDate 2006-12-01
description Thiirene and thiirane have been chosen as model molecules representative of products present in crude oil to study the key steps in hydrotreating. The hydrotreating which can be desulfurization, deoxygenation or denitrogenation is the treatment of oil crude products under hydrogen pressure in presence of catalysts. This process leads to hydrogenolysis of carbon-heteroatom bond accompanied by heteroatom elimination. The catalytic site used is based on molybdenum disulfide (MoS<sub>2</sub>), which is considered as active phase in the commercial catalysts containing molybdenum atoms. Two steps characterise the desulfurization process: the adsorption and the carbon-sulfur bond cleavage. The thiirene geometry has been destroyed through the cleavage of one of the carbon-sulfur bonds. The calculation results showed that the desulfurization of the thiirene and thiirane do follow a heterolytic process. At the end of process, the reaction pathways are the same with an activation energy which was higher for thiirane than for thiirene. These results confirmed the same catalytic site and molecules obtained in previous works in the EHT method.
topic Adsorption
Bond cleavage
Hydrotreating
Desulfurization
Molybdenum disulfide
Thiirene
Thiirane
Geometry Optimisation
Reaction mechanism
Reaction pathway
Hartree – Fock (HF)
SCF
Density Functional Theory (DFT)
B<sub>3</sub>LYP
Lanl2dz
url http://www.ajol.info/index.php/bcse/article/view/61412
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