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Studies of the molecular interaction between cellulose and lignin as a model for the hierarchical structure of wood

机译:纤维素和木质素之间的分子相互作用作为木材层次结构模型的研究

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Wood and dietary fiber products all belong to a class of biomolecular composites that are rich in cellulose and lignin. The interaction between cellulose and lignin determines such properties as mechanical strength (wood); creep, durability and aging; cellulose purity (pulp), and digestibility (nutrients). The understanding of the interaction between cellulose and lignin can be approached from various types of analyses involving the natural biocomposites, or it can be explored by studying the physical mixtures of the two types of macromolecules. The latter can be prepared by mixing the respective polymers in solid, solution or melt form within the constraints of solubility and melt-flowability. Such mixtures have been examined, and the results suggest that cellulose and its derivatives form two distinct phases with lignin and its derivatives; a crystalline polysaccharide-phase and a continuous amorphous phase that provides evidence for strong intermolecular interaction between the two components. In addition, results suggest that lignin and/ or its derivatives are capable of contributing to the supermolecular organization of cellulose (drivatives). The interaction between lignin and cellulose varies in relation to chemical differences as well as molecular parameters. The results are consistent with the view that the hierarchical structure of the natural biocomposite wood is not only the consequence of a sequence of biochemical events, but that it is the result of various thermodynamic driving forces that are independent of the biosynthetic origin.
机译:木材和膳食纤维产品都属于富含纤维素和木质素的一类生物分子复合材料。纤维素和木质素之间的相互作用决定了诸如机械强度(木材)的特性。蠕变,耐久性和老化;纤维素的纯度(纸浆)和消化率(营养素)。可以通过涉及天然生物复合物的各种类型的分析来了解纤维素和木质素之间的相互作用,或者可以通过研究两种大分子的物理混合物来探索它。后者可以通过在溶解度和熔体流动性的限制下以固体,溶液或熔体形式混合各自的聚合物来制备。已经检查了这种混合物,结果表明纤维素及其衍生物与木质素及其衍生物形成两个不同的相。结晶的多糖相和连续的无定形相,为两种组分之间强烈的分子间相互作用提供了证据。另外,结果表明木质素和/或其衍生物能够促进纤维素(衍生物)的超分子组织。木质素和纤维素之间的相互作用随化学差异以及分子参数的变化而变化。结果与以下观点一致:天然生物复合木材的分层结构不仅是一系列生化事件的结果,而且是与生物合成起源无关的各种热力学驱动力的结果。

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