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动态网络推动不可逆转逐步聚合反应的过程。

Dynamic Networks that Drive the Process of Irreversible Step-Growth Polymerization.

机构信息

University of Amsterdam, Van't Hoff Institute for Molecular Sciences, Amsterdam, 1090 GE, The Netherlands.

出版信息

Sci Rep. 2019 Feb 19;9(1):2276. doi: 10.1038/s41598-018-37942-4.

Abstract

Many research fields, reaching from social networks and epidemiology to biology and physics, have experienced great advance from recent developments in random graphs and network theory. In this paper we propose a generic model of step-growth polymerisation as a promising application of the percolation on a directed random graph. This polymerisation process is used to manufacture a broad range of polymeric materials, including: polyesters, polyurethanes, polyamides, and many others. We link features of step-growth polymerisation to the properties of the directed configuration model. In this way, we obtain new analytical expressions describing the polymeric microstructure and compare them to data from experiments and computer simulations. The molecular weight distribution is related to the sizes of connected components, gelation to the emergence of the giant component, and the molecular gyration radii to the Wiener index of these components. A model on this level of generality is instrumental in accelerating the design of new materials and optimizing their properties, as well as it provides a vital link between network science and experimentally observable physics of polymers.

摘要

许多研究领域,从社交网络和流行病学到生物学和物理学,都从随机图和网络理论的最新发展中取得了巨大的进展。在本文中,我们提出了一种作为定向随机图上渗流的有前途应用的逐步增长聚合的通用模型。这种聚合过程用于制造各种聚合材料,包括:聚酯、聚氨酯、聚酰胺等。我们将逐步增长聚合的特征与定向结构模型的性质联系起来。通过这种方式,我们得到了描述聚合微观结构的新的解析表达式,并将它们与实验和计算机模拟的数据进行比较。分子量分布与连通分量的大小有关,凝胶化与巨分量的出现有关,分子回转半径与这些分量的维纳指数有关。这种一般性水平的模型对于加速新材料的设计和优化其性能非常重要,同时它还为网络科学和聚合物的可观察到的物理性质之间提供了重要的联系。

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