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Impact of Macroporosity on Catalytic Upgrading of Fast Pyrolysis Bio‐Oil by Esterification over Silica Sulfonic Acids

Fast pyrolysis bio‐oils possess unfavorable physicochemical properties and poor stability, in large part, owing to the presence of carboxylic acids, which hinders their use as biofuels. Catalytic esterification offers an atom‐ and energy‐efficient route to upgrade pyrolysis bio‐oils. Propyl sulfonic...

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Autores principales: Manayil, Jinesh C., Osatiashtiani, Amin, Mendoza, Alvaro, Parlett, Christopher M.A., Isaacs, Mark A., Durndell, Lee J., Michailof, Chrysoula, Heracleous, Eleni, Lappas, Angelos, Lee, Adam F., Wilson, Karen
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5638084/
https://www.ncbi.nlm.nih.gov/pubmed/28665029
http://dx.doi.org/10.1002/cssc.201700959
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author Manayil, Jinesh C.
Osatiashtiani, Amin
Mendoza, Alvaro
Parlett, Christopher M.A.
Isaacs, Mark A.
Durndell, Lee J.
Michailof, Chrysoula
Heracleous, Eleni
Lappas, Angelos
Lee, Adam F.
Wilson, Karen
author_facet Manayil, Jinesh C.
Osatiashtiani, Amin
Mendoza, Alvaro
Parlett, Christopher M.A.
Isaacs, Mark A.
Durndell, Lee J.
Michailof, Chrysoula
Heracleous, Eleni
Lappas, Angelos
Lee, Adam F.
Wilson, Karen
author_sort Manayil, Jinesh C.
collection PubMed
description Fast pyrolysis bio‐oils possess unfavorable physicochemical properties and poor stability, in large part, owing to the presence of carboxylic acids, which hinders their use as biofuels. Catalytic esterification offers an atom‐ and energy‐efficient route to upgrade pyrolysis bio‐oils. Propyl sulfonic acid (PrSO(3)H) silicas are active for carboxylic acid esterification but suffer mass‐transport limitations for bulky substrates. The incorporation of macropores (200 nm) enhances the activity of mesoporous SBA‐15 architectures (post‐functionalized by hydrothermal saline‐promoted grafting) for the esterification of linear carboxylic acids, with the magnitude of the turnover frequency (TOF) enhancement increasing with carboxylic acid chain length from 5 % (C(3)) to 110 % (C(12)). Macroporous–mesoporous PrSO(3)H/SBA‐15 also provides a two‐fold TOF enhancement over its mesoporous analogue for the esterification of a real, thermal fast‐pyrolysis bio‐oil derived from woodchips. The total acid number was reduced by 57 %, as determined by GC×GC–time‐of‐flight mass spectrometry (GC×GC–ToFMS), which indicated ester and ether formation accompanying the loss of acid, phenolic, aldehyde, and ketone components.
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spelling pubmed-56380842017-10-25 Impact of Macroporosity on Catalytic Upgrading of Fast Pyrolysis Bio‐Oil by Esterification over Silica Sulfonic Acids Manayil, Jinesh C. Osatiashtiani, Amin Mendoza, Alvaro Parlett, Christopher M.A. Isaacs, Mark A. Durndell, Lee J. Michailof, Chrysoula Heracleous, Eleni Lappas, Angelos Lee, Adam F. Wilson, Karen ChemSusChem Full Papers Fast pyrolysis bio‐oils possess unfavorable physicochemical properties and poor stability, in large part, owing to the presence of carboxylic acids, which hinders their use as biofuels. Catalytic esterification offers an atom‐ and energy‐efficient route to upgrade pyrolysis bio‐oils. Propyl sulfonic acid (PrSO(3)H) silicas are active for carboxylic acid esterification but suffer mass‐transport limitations for bulky substrates. The incorporation of macropores (200 nm) enhances the activity of mesoporous SBA‐15 architectures (post‐functionalized by hydrothermal saline‐promoted grafting) for the esterification of linear carboxylic acids, with the magnitude of the turnover frequency (TOF) enhancement increasing with carboxylic acid chain length from 5 % (C(3)) to 110 % (C(12)). Macroporous–mesoporous PrSO(3)H/SBA‐15 also provides a two‐fold TOF enhancement over its mesoporous analogue for the esterification of a real, thermal fast‐pyrolysis bio‐oil derived from woodchips. The total acid number was reduced by 57 %, as determined by GC×GC–time‐of‐flight mass spectrometry (GC×GC–ToFMS), which indicated ester and ether formation accompanying the loss of acid, phenolic, aldehyde, and ketone components. John Wiley and Sons Inc. 2017-08-16 2017-09-11 /pmc/articles/PMC5638084/ /pubmed/28665029 http://dx.doi.org/10.1002/cssc.201700959 Text en © 2017 The Authors. Published by Wiley-VCH Verlag GmbH & Co. KGaA. This is an open access article under the terms of the Creative Commons Attribution (http://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Full Papers
Manayil, Jinesh C.
Osatiashtiani, Amin
Mendoza, Alvaro
Parlett, Christopher M.A.
Isaacs, Mark A.
Durndell, Lee J.
Michailof, Chrysoula
Heracleous, Eleni
Lappas, Angelos
Lee, Adam F.
Wilson, Karen
Impact of Macroporosity on Catalytic Upgrading of Fast Pyrolysis Bio‐Oil by Esterification over Silica Sulfonic Acids
title Impact of Macroporosity on Catalytic Upgrading of Fast Pyrolysis Bio‐Oil by Esterification over Silica Sulfonic Acids
title_full Impact of Macroporosity on Catalytic Upgrading of Fast Pyrolysis Bio‐Oil by Esterification over Silica Sulfonic Acids
title_fullStr Impact of Macroporosity on Catalytic Upgrading of Fast Pyrolysis Bio‐Oil by Esterification over Silica Sulfonic Acids
title_full_unstemmed Impact of Macroporosity on Catalytic Upgrading of Fast Pyrolysis Bio‐Oil by Esterification over Silica Sulfonic Acids
title_short Impact of Macroporosity on Catalytic Upgrading of Fast Pyrolysis Bio‐Oil by Esterification over Silica Sulfonic Acids
title_sort impact of macroporosity on catalytic upgrading of fast pyrolysis bio‐oil by esterification over silica sulfonic acids
topic Full Papers
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5638084/
https://www.ncbi.nlm.nih.gov/pubmed/28665029
http://dx.doi.org/10.1002/cssc.201700959
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