Acid Mesoporous Carbon Monoliths from Lignocellulosic Biomass Waste for Methanol Dehydration
Activated carbon monoliths (ACMs), with 25 cells/cm<sup>2</sup>, were prepared from the direct extrusion of Alcell, Kraft lignin and olives stones particles that were impregnated with phosphoric acid, followed by activation at 700 °C. These ACMs were used as catalysts for methan...
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doaj-33cfd7347ccc409d8eb176366686e5c52020-11-25T02:30:48ZengMDPI AGMaterials1996-19442019-07-011215239410.3390/ma12152394ma12152394Acid Mesoporous Carbon Monoliths from Lignocellulosic Biomass Waste for Methanol DehydrationPaul O. Ibeh0Francisco J. García-Mateos1Ramiro Ruiz-Rosas2Juana María Rosas3José Rodríguez-Mirasol4Tomás Cordero5Departamento de Ingeniería Química, Campus de Teatinos s/n, Universidad de Málaga, 29010 Málaga, SpainDepartamento de Ingeniería Química, Campus de Teatinos s/n, Universidad de Málaga, 29010 Málaga, SpainDepartamento de Ingeniería Química, Campus de Teatinos s/n, Universidad de Málaga, 29010 Málaga, SpainDepartamento de Ingeniería Química, Campus de Teatinos s/n, Universidad de Málaga, 29010 Málaga, SpainDepartamento de Ingeniería Química, Campus de Teatinos s/n, Universidad de Málaga, 29010 Málaga, SpainDepartamento de Ingeniería Química, Campus de Teatinos s/n, Universidad de Málaga, 29010 Málaga, SpainActivated carbon monoliths (ACMs), with 25 cells/cm<sup>2</sup>, were prepared from the direct extrusion of Alcell, Kraft lignin and olives stones particles that were impregnated with phosphoric acid, followed by activation at 700 °C. These ACMs were used as catalysts for methanol dehydration reaction under air atmosphere. ACM that was prepared from olive stone and at impregnation ratio of 2, OS2, showed the highest catalytic activity, with a methanol conversion of 75%, a selectivity to dimethyl ether (DME) higher than 90%, and a great stability under the operating conditions studied. The results suggest that the monolithic conformation, with a density channel of 25 cells/cm<sup>2</sup> avoid the blockage of active sites by coke deposition to a large extent. Methanol conversion for OS2 was reduced to 29% in the presence of 8%v water, at 350 °C, although the selectivity to DME remained higher than 86%. A kinetic model of methanol dehydration in the presence of air was developed, while taking into account the competitive adsorption of water. A Langmuir-Hinshelwood mechanism, whose rate-limiting step was the surface reaction between two adsorbed methanol molecules, represented the experimental data under the conditions studied very well. An activation energy value of 92 kJ/mol for methanol dehydration reaction and adsorption enthalpies for methanol and water of −12 and −35 kJ/mol, respectively, were obtained.https://www.mdpi.com/1996-1944/12/15/2394activated carbon monolithligninbiomass wasteacid catalystmethanol dehydration |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Paul O. Ibeh Francisco J. García-Mateos Ramiro Ruiz-Rosas Juana María Rosas José Rodríguez-Mirasol Tomás Cordero |
spellingShingle |
Paul O. Ibeh Francisco J. García-Mateos Ramiro Ruiz-Rosas Juana María Rosas José Rodríguez-Mirasol Tomás Cordero Acid Mesoporous Carbon Monoliths from Lignocellulosic Biomass Waste for Methanol Dehydration Materials activated carbon monolith lignin biomass waste acid catalyst methanol dehydration |
author_facet |
Paul O. Ibeh Francisco J. García-Mateos Ramiro Ruiz-Rosas Juana María Rosas José Rodríguez-Mirasol Tomás Cordero |
author_sort |
Paul O. Ibeh |
title |
Acid Mesoporous Carbon Monoliths from Lignocellulosic Biomass Waste for Methanol Dehydration |
title_short |
Acid Mesoporous Carbon Monoliths from Lignocellulosic Biomass Waste for Methanol Dehydration |
title_full |
Acid Mesoporous Carbon Monoliths from Lignocellulosic Biomass Waste for Methanol Dehydration |
title_fullStr |
Acid Mesoporous Carbon Monoliths from Lignocellulosic Biomass Waste for Methanol Dehydration |
title_full_unstemmed |
Acid Mesoporous Carbon Monoliths from Lignocellulosic Biomass Waste for Methanol Dehydration |
title_sort |
acid mesoporous carbon monoliths from lignocellulosic biomass waste for methanol dehydration |
publisher |
MDPI AG |
series |
Materials |
issn |
1996-1944 |
publishDate |
2019-07-01 |
description |
Activated carbon monoliths (ACMs), with 25 cells/cm<sup>2</sup>, were prepared from the direct extrusion of Alcell, Kraft lignin and olives stones particles that were impregnated with phosphoric acid, followed by activation at 700 °C. These ACMs were used as catalysts for methanol dehydration reaction under air atmosphere. ACM that was prepared from olive stone and at impregnation ratio of 2, OS2, showed the highest catalytic activity, with a methanol conversion of 75%, a selectivity to dimethyl ether (DME) higher than 90%, and a great stability under the operating conditions studied. The results suggest that the monolithic conformation, with a density channel of 25 cells/cm<sup>2</sup> avoid the blockage of active sites by coke deposition to a large extent. Methanol conversion for OS2 was reduced to 29% in the presence of 8%v water, at 350 °C, although the selectivity to DME remained higher than 86%. A kinetic model of methanol dehydration in the presence of air was developed, while taking into account the competitive adsorption of water. A Langmuir-Hinshelwood mechanism, whose rate-limiting step was the surface reaction between two adsorbed methanol molecules, represented the experimental data under the conditions studied very well. An activation energy value of 92 kJ/mol for methanol dehydration reaction and adsorption enthalpies for methanol and water of −12 and −35 kJ/mol, respectively, were obtained. |
topic |
activated carbon monolith lignin biomass waste acid catalyst methanol dehydration |
url |
https://www.mdpi.com/1996-1944/12/15/2394 |
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