Clean Syn-Fuels via Hydrogenation Processes: Acidity–Activity Relationship in O-Xylene Hydrotreating
Transition metal sulfide catalysts are actually the most performing catalytic materials in crude oil hydrotreating (HDT), for energetic purposes. However, these systems suffer from several drawbacks that limit their exploitation. Aiming to meet the even more stringent environmental requirement, thro...
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doaj-b554e773714848aab8c8a71899abb35e2020-11-25T03:30:13ZengMDPI AGChemEngineering2305-70842020-01-0141410.3390/chemengineering4010004chemengineering4010004Clean Syn-Fuels via Hydrogenation Processes: Acidity–Activity Relationship in O-Xylene HydrotreatingAlessandra Palella0Katia Barbera1Francesco Arena2Lorenzo Spadaro3CNR Institute of Advanced Technology for Energy “Nicola Giordano”, 98125 Messina, ItalyInstitute of Researches on Catalysis and Environment in Lyon (IRCELyon), Lyon, FranceDepartment of Engineering, University of Messina, 98158 Messina, ItalyCNR Institute of Advanced Technology for Energy “Nicola Giordano”, 98125 Messina, ItalyTransition metal sulfide catalysts are actually the most performing catalytic materials in crude oil hydrotreating (HDT), for energetic purposes. However, these systems suffer from several drawbacks that limit their exploitation. Aiming to meet the even more stringent environmental requirement, through a remarkable improvement of HDT performance in the presence of refractory feedstock (i.e., in terms of activity, selectivity, and stability), a deeper knowledge of the structure−activity relationship of catalysts must be achieved. Therefore, in this study, CoMo/γ-Al<sub>2</sub>O<sub>3</sub> and NiMo/γ-Al<sub>2</sub>O<sub>3</sub> catalysts were characterized and tested in the o-xylene hydrogenation model reaction, assessing the influence of both support acidity and catalyst acid strength on reaction pathway by employing γ-Al<sub>2</sub>O<sub>3</sub> and Y-Type zeolite as acid reference materials. A clear relationship between concentration and strength of acid sites and the performance of the catalytic materials was established. Cobalt based catalyst (CoMoS<sub>x</sub>) proves a higher acidic character with respect to Nickel (NiMoS<sub>x</sub>), prompting isomerization reactions preferentially, also reflecting a greater o-xylene conversion. The different chemical properties of metals also affect the catalytic pathway, leading on the CoMoS<sub>x</sub> system to the preferential formation of p-xylene isomer with respect to m-xylene.https://www.mdpi.com/2305-7084/4/1/4n/a |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Alessandra Palella Katia Barbera Francesco Arena Lorenzo Spadaro |
spellingShingle |
Alessandra Palella Katia Barbera Francesco Arena Lorenzo Spadaro Clean Syn-Fuels via Hydrogenation Processes: Acidity–Activity Relationship in O-Xylene Hydrotreating ChemEngineering n/a |
author_facet |
Alessandra Palella Katia Barbera Francesco Arena Lorenzo Spadaro |
author_sort |
Alessandra Palella |
title |
Clean Syn-Fuels via Hydrogenation Processes: Acidity–Activity Relationship in O-Xylene Hydrotreating |
title_short |
Clean Syn-Fuels via Hydrogenation Processes: Acidity–Activity Relationship in O-Xylene Hydrotreating |
title_full |
Clean Syn-Fuels via Hydrogenation Processes: Acidity–Activity Relationship in O-Xylene Hydrotreating |
title_fullStr |
Clean Syn-Fuels via Hydrogenation Processes: Acidity–Activity Relationship in O-Xylene Hydrotreating |
title_full_unstemmed |
Clean Syn-Fuels via Hydrogenation Processes: Acidity–Activity Relationship in O-Xylene Hydrotreating |
title_sort |
clean syn-fuels via hydrogenation processes: acidity–activity relationship in o-xylene hydrotreating |
publisher |
MDPI AG |
series |
ChemEngineering |
issn |
2305-7084 |
publishDate |
2020-01-01 |
description |
Transition metal sulfide catalysts are actually the most performing catalytic materials in crude oil hydrotreating (HDT), for energetic purposes. However, these systems suffer from several drawbacks that limit their exploitation. Aiming to meet the even more stringent environmental requirement, through a remarkable improvement of HDT performance in the presence of refractory feedstock (i.e., in terms of activity, selectivity, and stability), a deeper knowledge of the structure−activity relationship of catalysts must be achieved. Therefore, in this study, CoMo/γ-Al<sub>2</sub>O<sub>3</sub> and NiMo/γ-Al<sub>2</sub>O<sub>3</sub> catalysts were characterized and tested in the o-xylene hydrogenation model reaction, assessing the influence of both support acidity and catalyst acid strength on reaction pathway by employing γ-Al<sub>2</sub>O<sub>3</sub> and Y-Type zeolite as acid reference materials. A clear relationship between concentration and strength of acid sites and the performance of the catalytic materials was established. Cobalt based catalyst (CoMoS<sub>x</sub>) proves a higher acidic character with respect to Nickel (NiMoS<sub>x</sub>), prompting isomerization reactions preferentially, also reflecting a greater o-xylene conversion. The different chemical properties of metals also affect the catalytic pathway, leading on the CoMoS<sub>x</sub> system to the preferential formation of p-xylene isomer with respect to m-xylene. |
topic |
n/a |
url |
https://www.mdpi.com/2305-7084/4/1/4 |
work_keys_str_mv |
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