TY - JOUR
T1 - Ionic liquid screening for lignocellulosic biomass fractionation
T2 - COSMO–RS prediction and experimental verification
AU - Zhou, Le
AU - Liu, Yuxin
AU - Zhang, Jintong
AU - Li, Qiongguang
AU - Yuan, Menglei
AU - Kang, Zhaoqing
N1 - Publisher Copyright:
© 2024 Elsevier B.V.
PY - 2024/8/1
Y1 - 2024/8/1
N2 - The fractionation of lignocellulosic biomass is vital for advancing its applications, particularly in the extraction of high-demand cellulose. In this study, 378 ionic liquids (ILs), comprising of 18 anions and 21 cations, were selected to predict lignocellulosic biomass fractionation using COSMO–RS. The selectivity of the cellulose model to the lignin model in the prediction indicates that the dissolution and separation of lignocellulosic biomass are primarily governed by the anion, and the carboxylate and amino acid anions present the most effective separation effect among the ILs. Moreover, the pretreatment and composition analysis of cornstalk using five representative ILs indicated consistency with the predicted selectivity. The higher calculated excess enthalpy between cellulose and the IL, compared to that between lignin and the IL, led to increased cellulose dissolution by the IL, ultimately resulting in the separation of lignocellulose. This study provides a new paradigm for directly predicting the selectivity of IL to cellulose and lignin and designing ILs capable of achieving lignocellulosic biomass fractionation through COSMO–RS simulation.
AB - The fractionation of lignocellulosic biomass is vital for advancing its applications, particularly in the extraction of high-demand cellulose. In this study, 378 ionic liquids (ILs), comprising of 18 anions and 21 cations, were selected to predict lignocellulosic biomass fractionation using COSMO–RS. The selectivity of the cellulose model to the lignin model in the prediction indicates that the dissolution and separation of lignocellulosic biomass are primarily governed by the anion, and the carboxylate and amino acid anions present the most effective separation effect among the ILs. Moreover, the pretreatment and composition analysis of cornstalk using five representative ILs indicated consistency with the predicted selectivity. The higher calculated excess enthalpy between cellulose and the IL, compared to that between lignin and the IL, led to increased cellulose dissolution by the IL, ultimately resulting in the separation of lignocellulose. This study provides a new paradigm for directly predicting the selectivity of IL to cellulose and lignin and designing ILs capable of achieving lignocellulosic biomass fractionation through COSMO–RS simulation.
KW - Cellulose dissolution
KW - COSMO-RS
KW - Ionic liquids
KW - Lignocellulosic fractionation
KW - Screening
UR - http://www.scopus.com/inward/record.url?scp=85195585098&partnerID=8YFLogxK
U2 - 10.1016/j.molliq.2024.125214
DO - 10.1016/j.molliq.2024.125214
M3 - 文章
AN - SCOPUS:85195585098
SN - 0167-7322
VL - 407
JO - Journal of Molecular Liquids
JF - Journal of Molecular Liquids
M1 - 125214
ER -