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Theoretical insight into the hydrogenolysis mechanism of lignin dimer compounds based on experiments.

Authors :
Zhu, Chen
Cao, Jing-Pei
Feng, Xiao-Bo
Zhao, Xiao-Yan
Yang, Zhen
Li, Jun
Zhao, Ming
Zhao, Yun-Peng
Bai, Hong-Cun
Source :
Renewable Energy: An International Journal. Jan2021, Vol. 163, p1831-1837. 7p.
Publication Year :
2021

Abstract

Deep insight of reaction mechanism in lignin model compounds is helpful to achieve the directed depolymerization of lignin or biomass to chemicals or fuels. In this study, the density functional theory (DFT) calculation was employed to investigate the cleavage mechanism of the C –O bonds in lignin dimers. Additionally, the intrinsic chemical reactivity of molecular in term of the Fukui function was applied to predict the most probable sites which react with hydrogen free radicals (H·). It was found that the O atoms in lignin dimers are the most reaction site involving H· because of the large f (0). By this method, the most rational path from a series of reaction paths was screen out. Apart from the Fukui function, the average local ionization energy (ALIE) was analyzed to prove the reliability of Fukui function. The kinetic analysis of the reaction path was performed to further understand the impact of temperature on the reaction rate constant (KTST). It is observed that benzyl phenyl ether (BPE) with higher KTST could be easily cleaved because of the relatively low energy barrier. Image 1 • The reaction paths of lignin dimers hydrogenolysis was simulated by DFT. • The Fukui function and average local ionization energy of molecule were calculated. • The reaction sites with H· radicals was predicted based on f (0) and ALIE. • The kinetic studies of lignin dimers hydrogenolysis were explored. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
09601481
Volume :
163
Database :
Academic Search Index
Journal :
Renewable Energy: An International Journal
Publication Type :
Academic Journal
Accession number :
147050840
Full Text :
https://doi.org/10.1016/j.renene.2020.10.094