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离子液体中纤维素纤维溶解与分解机制的理论研究。

Theoretical Investigation of Dissolution and Decomposition Mechanisms of a Cellulose Fiber in Ionic Liquids.

机构信息

Department of Theoretical and Computational Molecular Science, Institute for Molecular Science, 38 Nishigo-Naka, Myodaiji, Okazaki 444-8585, Japan.

出版信息

J Phys Chem B. 2020 Apr 16;124(15):3090-3102. doi: 10.1021/acs.jpcb.9b11527. Epub 2020 Apr 2.

Abstract

We carry out detailed computational investigations of the decomposition and dissolution processes of a cellulose I fiber in the ionic liquid (IL) solvent, [CMIm][OAc]. First, we investigated the properties of the interactions between cellulose chains in the cellulose fiber, including interchain H-bonds and stacking interactions, with the quantum and molecular mechanics (QM/MM) methods, employing a microscopic solvent model. From the calculation results, it is indicated that interchain interaction energies are largely influenced in the axial direction by the solvent effects of the IL and that the degree of interactions depends on the site of the glucose unit, compared to that in the equatorial (parallel) direction. To further investigate the impact of the IL on intrachain H-bonds and its relation to interchain interaction, we perform molecular dynamics (MD) simulations. Our results indicate that it is difficult to disrupt a strong three-dimensional H-bond network in the cellulose fiber at room temperature, even with ILs. On the other hand, the total number of H-bonds in the cellulose fiber continues to decrease from the beginning of the dissolution and decomposition processes in the IL at 400 K. The results indicate that the number of inter- and intrachain H-bonds reduces sequentially and that intrachain H-bond breakage inside the cellulose fiber proceeds prior to interchain H-bond disruption. Also, it is shown that the breakage of interchain H-bonds starts playing an important role in enhancing the separation of cellulose chains from each other. On the role of anions in the dissolution and decomposition processes of the cellulose fiber in the IL, our results indicate that the formation of H-bonds between [OAc] anions and a cellulose chain is facilitated by the intercalation of [OAc] anions into the cellulose fiber and that, in particular, the breakage of intrachain H-bonds in cellulose chains due to [OAc] anions proceeds prior to that of interchain H-bonds. On the role of cations, it is shown that [CMIm] cations could interact with the cellulose and stabilize detached cellulose chains due to the stacking effect through the van der Waals interaction, in particular, within the first solvation shell of a cellulose chain in ILs. Our results suggest that the enhancement of the flexibility of rigid cellulose chains triggered by the breakage of intrachain H-bonds due to anions starts decomposition processes accompanied by dissolution processes due to the intercalation of cations, synergistically, and, then, both dissolution and decomposition processes are executed simultaneously.

摘要

我们对纤维素 I 纤维在离子液体(IL)溶剂[CMIm][OAc]中的分解和溶解过程进行了详细的计算研究。首先,我们采用量子力学和分子力学(QM/MM)方法,使用微观溶剂模型研究了纤维素纤维中纤维素链之间相互作用的性质,包括链间氢键和堆积相互作用。计算结果表明,溶剂 IL 的作用对轴向链间相互作用能有很大影响,而且相互作用的程度取决于葡萄糖单元的位置,而不是与轴向垂直的方向。为了进一步研究 IL 对链内氢键的影响及其与链间相互作用的关系,我们进行了分子动力学(MD)模拟。结果表明,即使在室温下,用 IL 也很难破坏纤维素纤维中强的三维氢键网络。另一方面,在 400 K 时,纤维素纤维在 IL 中的溶解和分解过程开始时,纤维素纤维中的氢键总数不断减少。结果表明,链间和链内氢键的数量依次减少,并且纤维素纤维内的链内氢键断裂先于链间氢键断裂。此外,还表明,链间氢键的断裂开始在增强纤维素链彼此分离方面发挥重要作用。关于阴离子在纤维素纤维在 IL 中的溶解和分解过程中的作用,我们的结果表明,[OAc]阴离子与纤维素链之间氢键的形成是通过[OAc]阴离子插入纤维素纤维而促进的,特别是,由于[OAc]阴离子,纤维素链中的链内氢键断裂先于链间氢键断裂。关于阳离子的作用,结果表明,由于范德华相互作用,[CMIm]阳离子可以通过堆积作用与纤维素相互作用并稳定脱离的纤维素链,特别是在 IL 中纤维素链的第一个溶剂化壳内。我们的结果表明,由于阴离子导致的链内氢键断裂引起的刚性纤维素链的灵活性增强,引发了伴随溶解过程的分解过程,由于阳离子的插入,协同作用,然后同时进行溶解和分解过程。

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