Mostofian Barmak, Cheng Xiaolin, Smith Jeremy C
UT/ORNL Center for Molecular Biophysics, Oak Ridge National Laboratory , Oak Ridge, Tennessee 37830, United States.
J Phys Chem B. 2014 Sep 25;118(38):11037-49. doi: 10.1021/jp502889c. Epub 2014 Sep 15.
Ionic liquids have become a popular solvent for cellulose pretreatment in biorefineries due to their efficiency in dissolution and their reusability. Understanding the interactions between cations, anions, and cellulose is key to the development of better solvents and the improvement of pretreatment conditions. While previous studies described the interactions between ionic liquids and cellulose fibers, shedding light on the initial stages of the cellulose dissolution process, we study the end state of that process by exploring the structure and dynamics of a single cellulose decamer solvated in 1-butyl-3-methyl-imidazolium chloride (BmimCl) and in water using replica-exchange molecular dynamics. In both solvents, global structural features of the cellulose chain are similar. However, analyses of local structural properties show that cellulose explores greater conformational variability in the ionic liquid than in water. For instance, in BmimCl the cellulose intramolecular hydrogen bond O3H'···O5 is disrupted more often resulting in greater flexibility of the solute. Our results indicate that the cellulose chain is more dynamic in BmimCl than in water, which may play a role in the favorable dissolution of cellulose in the ionic liquid. Calculation of the configurational entropy of the cellulose decamer confirms its higher conformational flexibility in BmimCl than in water at elevated temperatures.
离子液体因其在溶解方面的效率和可重复使用性,已成为生物炼制中纤维素预处理的常用溶剂。了解阳离子、阴离子与纤维素之间的相互作用是开发更好的溶剂和改善预处理条件的关键。虽然先前的研究描述了离子液体与纤维素纤维之间的相互作用,揭示了纤维素溶解过程的初始阶段,但我们通过使用副本交换分子动力学探索溶解在1-丁基-3-甲基咪唑氯盐(BmimCl)和水中的单个纤维素十聚体的结构和动力学,来研究该过程的最终状态。在两种溶剂中,纤维素链的整体结构特征相似。然而,局部结构性质分析表明,纤维素在离子液体中比在水中具有更大的构象变异性。例如,在BmimCl中,纤维素分子内氢键O3H'···O5被破坏的频率更高,导致溶质具有更大的柔韧性。我们的结果表明,纤维素链在BmimCl中比在水中更具动态性,这可能在纤维素在离子液体中的良好溶解中起作用。纤维素十聚体的构型熵计算证实,在升高的温度下,其在BmimCl中的构象柔韧性高于在水中。