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Theoretical Elucidation of β-O-4 Bond Cleavage of Lignin Model Compound Promoted by Sulfonic Acid-Functionalized Ionic Liquid

While the depolymerization of lignin to chemicals catalyzed by ionic liquids has attracted significant attention, the relevant molecular mechanism, especially the cleavage of specific bonds related to efficient depolymerization, still needs to be deeply understood for the complexity of this natural...

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Autores principales: Zhang, Yaqin, Huo, Feng, Wang, Yanlei, Xia, Yu, Tan, Xin, Zhang, Suojiang, He, Hongyan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6384239/
https://www.ncbi.nlm.nih.gov/pubmed/30828575
http://dx.doi.org/10.3389/fchem.2019.00078
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author Zhang, Yaqin
Huo, Feng
Wang, Yanlei
Xia, Yu
Tan, Xin
Zhang, Suojiang
He, Hongyan
author_facet Zhang, Yaqin
Huo, Feng
Wang, Yanlei
Xia, Yu
Tan, Xin
Zhang, Suojiang
He, Hongyan
author_sort Zhang, Yaqin
collection PubMed
description While the depolymerization of lignin to chemicals catalyzed by ionic liquids has attracted significant attention, the relevant molecular mechanism, especially the cleavage of specific bonds related to efficient depolymerization, still needs to be deeply understood for the complexity of this natural aromatic polymer. This work presents a detailed understanding of the cleavage of the most abundant β-O-4 bond in the model system, guaiacylglycerol β-guaiacyl ether, by a Brønsted acidic IL (1-methyl-3-(propyl-3-sulfonate) imidazolium bisulfate ([C(3)SO(3)Hmim][HSO(4)]) using density functional theory calculation and molecular dynamics simulation. It has been found that [C(3)SO(3)Hmim][HSO(4)] generates zwitterion/H(2)SO(4) via proton transfer with an energy barrier of 0.38 kcal/mol, which plays a dominant role in the lignin depolymerization process. Subsequently, the reaction can be carried out via three potential pathways, including (1) the dehydration of α-C-OH, (2) dehydration of γ-C-OH, and (3) the protonation of β-O. The electrophilic attack of H(2)SO(4) and the hydrogen-bonding interaction between GG and zwitterion are the two most important factors to promote the depolymerization reaction. In all steps, the dehydration of α-C-OH route is computed to be favored for the experiment. The relatively higher energy barrier for β-O-4 bond dissociation among these reaction steps is attributed to the hindrance of the self-assembled clusters of GG in the mixed system. Further, the dense distribution of H13([C(3)SO(3)Hmim]) surrounding O21(GG), indicated by sharp peaks in RDFs, reveals that -SO(3)H in cations plays a substantial role in solvating lignin. Hopefully, this work will demonstrate new insights into lignin depolymerization by functionalized ILs in biomass conversion chemistry.
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spelling pubmed-63842392019-03-01 Theoretical Elucidation of β-O-4 Bond Cleavage of Lignin Model Compound Promoted by Sulfonic Acid-Functionalized Ionic Liquid Zhang, Yaqin Huo, Feng Wang, Yanlei Xia, Yu Tan, Xin Zhang, Suojiang He, Hongyan Front Chem Chemistry While the depolymerization of lignin to chemicals catalyzed by ionic liquids has attracted significant attention, the relevant molecular mechanism, especially the cleavage of specific bonds related to efficient depolymerization, still needs to be deeply understood for the complexity of this natural aromatic polymer. This work presents a detailed understanding of the cleavage of the most abundant β-O-4 bond in the model system, guaiacylglycerol β-guaiacyl ether, by a Brønsted acidic IL (1-methyl-3-(propyl-3-sulfonate) imidazolium bisulfate ([C(3)SO(3)Hmim][HSO(4)]) using density functional theory calculation and molecular dynamics simulation. It has been found that [C(3)SO(3)Hmim][HSO(4)] generates zwitterion/H(2)SO(4) via proton transfer with an energy barrier of 0.38 kcal/mol, which plays a dominant role in the lignin depolymerization process. Subsequently, the reaction can be carried out via three potential pathways, including (1) the dehydration of α-C-OH, (2) dehydration of γ-C-OH, and (3) the protonation of β-O. The electrophilic attack of H(2)SO(4) and the hydrogen-bonding interaction between GG and zwitterion are the two most important factors to promote the depolymerization reaction. In all steps, the dehydration of α-C-OH route is computed to be favored for the experiment. The relatively higher energy barrier for β-O-4 bond dissociation among these reaction steps is attributed to the hindrance of the self-assembled clusters of GG in the mixed system. Further, the dense distribution of H13([C(3)SO(3)Hmim]) surrounding O21(GG), indicated by sharp peaks in RDFs, reveals that -SO(3)H in cations plays a substantial role in solvating lignin. Hopefully, this work will demonstrate new insights into lignin depolymerization by functionalized ILs in biomass conversion chemistry. Frontiers Media S.A. 2019-02-15 /pmc/articles/PMC6384239/ /pubmed/30828575 http://dx.doi.org/10.3389/fchem.2019.00078 Text en Copyright © 2019 Zhang, Huo, Wang, Xia, Tan, Zhang and He. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Chemistry
Zhang, Yaqin
Huo, Feng
Wang, Yanlei
Xia, Yu
Tan, Xin
Zhang, Suojiang
He, Hongyan
Theoretical Elucidation of β-O-4 Bond Cleavage of Lignin Model Compound Promoted by Sulfonic Acid-Functionalized Ionic Liquid
title Theoretical Elucidation of β-O-4 Bond Cleavage of Lignin Model Compound Promoted by Sulfonic Acid-Functionalized Ionic Liquid
title_full Theoretical Elucidation of β-O-4 Bond Cleavage of Lignin Model Compound Promoted by Sulfonic Acid-Functionalized Ionic Liquid
title_fullStr Theoretical Elucidation of β-O-4 Bond Cleavage of Lignin Model Compound Promoted by Sulfonic Acid-Functionalized Ionic Liquid
title_full_unstemmed Theoretical Elucidation of β-O-4 Bond Cleavage of Lignin Model Compound Promoted by Sulfonic Acid-Functionalized Ionic Liquid
title_short Theoretical Elucidation of β-O-4 Bond Cleavage of Lignin Model Compound Promoted by Sulfonic Acid-Functionalized Ionic Liquid
title_sort theoretical elucidation of β-o-4 bond cleavage of lignin model compound promoted by sulfonic acid-functionalized ionic liquid
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6384239/
https://www.ncbi.nlm.nih.gov/pubmed/30828575
http://dx.doi.org/10.3389/fchem.2019.00078
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