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Cellulose in Ionic Liquids and Alkaline Solutions: Advances in the Mechanisms of Biopolymer Dissolution and Regeneration

机译:离子液体和碱性溶液中的纤维素:生物聚合物溶解和再生机理的进展

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摘要

This review is focused on assessment of solvents for cellulose dissolution and the mechanism of regeneration of the dissolved biopolymer. The solvents of interest are imidazole-based ionic liquids, quaternary ammonium electrolytes, salts of super-bases, and their binary mixtures with molecular solvents. We briefly discuss the mechanism of cellulose dissolution and address the strategies for assessing solvent efficiency, as inferred from its physico-chemical properties. In addition to the favorable effect of lower cellulose solution rheology, microscopic solvent/solution properties, including empirical polarity, Lewis acidity, Lewis basicity, and dipolarity/polarizability are determinants of cellulose dissolution. We discuss how these microscopic properties are calculated from the UV-Vis spectra of solvatochromic probes, and their use to explain the observed solvent efficiency order. We dwell briefly on use of other techniques, in particular NMR and theoretical calculations for the same purpose. Once dissolved, cellulose is either regenerated in different physical shapes, or derivatized under homogeneous conditions. We discuss the mechanism of, and the steps involved in cellulose regeneration, via formation of mini-sheets, association into “mini-crystals”, and convergence into larger crystalline and amorphous regions. We discuss the use of different techniques, including FTIR, X-ray diffraction, and theoretical calculations to probe the forces involved in cellulose regeneration.
机译:本文的重点是评估纤维素溶解的溶剂以及溶解的生物聚合物的再生机理。感兴趣的溶剂是基于咪唑的离子液体,季铵电解质,超强碱盐及其与分子溶剂的二元混合物。从其理化性质推断,我们简要讨论了纤维素溶解的机理并提出了评估溶剂效率的策略。除了降低纤维素溶液流变性的有利作用外,微观溶剂/溶液特性(包括经验极性,路易斯酸度,路易斯碱度和偶极/极化率)是纤维素溶解的决定因素。我们讨论了如何从溶剂化变色探针的UV-Vis光谱中计算这些微观性质,以及它们如何用于解释观察到的溶剂效率顺序。我们简要介绍了其他技术的使用,特别是NMR和用于同一目的的理论计算。溶解后,纤维素要么以不同的物理形状再生,要么在均质条件下衍生化。我们讨论了纤维素再生的机理和涉及的步骤,包括形成小片,缔合为“小晶体”以及收敛到较大的晶体和非晶区域。我们讨论了不同技术的使用,包括FTIR,X射线衍射和理论计算,以探究参与纤维素再生的力。

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