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通过热敏链浓度调节基于聚三亚甲基碳酸酯(PTMC)网络的热可逆温度范围。

Tuning the thermoreversible temperature domain of PTMC-based networks with thermosensitive links concentration.

作者信息

Li Xiang, Becquart Frédéric, Taha Mohamed, Majesté Jean-Charles, Chen Jianding, Zhang Shengmiao, Mignard Nathalie

机构信息

Université de Lyon, F-42023 Saint-Etienne, France.

出版信息

Soft Matter. 2020 Mar 21;16(11):2815-2828. doi: 10.1039/c9sm01882d. Epub 2020 Feb 27.

Abstract

In this work, thermoreversible poly(trimethylene carbonate) (PTMC) based networks with different crosslinking densities were obtained by Diels-Alder (DA) reaction between furan-functionalized PTMC precursors and a bismaleimide. Furan-grafted PTMC with various functionalities determined by H-NMR analyses were prepared from telechelic PTMC oligomer, glycerol, 4,4'-methylenebis(cyclohexyl isocyanate) (HMDI) and furfuryl alcohol. The formation of network structures by DA reaction between furan and maleimide groups were proved by Fourier-transform infrared spectroscopy (FT-IR). Although both exo and endo DA adduct forms exist, the thermally more stable exo form dominates. The thermoreversibility of networks was evidenced by FT-IR, solubility, differential scanning calorimetry (DSC) and rheology experiments at different temperatures. By increasing furan functionality or node concentration, denser and stiffer networks could be formed with higher Young's modulus and true stress at break in tensile tests, as well as higher crossover temperature, which indicates a nominal transition from elastic behavior to viscous state. The disruption of networks was found to occur in high temperature ranges from 130 to 160 °C, depending on their crosslinking density.

摘要

在这项工作中,通过呋喃官能化的聚三亚甲基碳酸酯(PTMC)前体与双马来酰亚胺之间的狄尔斯-阿尔德(DA)反应,获得了具有不同交联密度的热可逆聚三亚甲基碳酸酯(PTMC)基网络。由遥爪PTMC低聚物、甘油、4,4'-亚甲基双(环己基异氰酸酯)(HMDI)和糠醇制备了通过核磁共振分析确定具有各种官能度的呋喃接枝PTMC。通过傅里叶变换红外光谱(FT-IR)证明了呋喃和马来酰亚胺基团之间通过DA反应形成网络结构。尽管外式和内式DA加合物形式均存在,但热稳定性更高的外式形式占主导。通过FT-IR、溶解度测定、差示扫描量热法(DSC)以及不同温度下的流变学实验证明了网络的热可逆性。通过增加呋喃官能度或节点浓度,可以形成更致密、更坚硬的网络,在拉伸试验中具有更高的杨氏模量和断裂时的真实应力,以及更高的转变温度,这表明从弹性行为到粘性状态的名义转变。发现网络的破坏发生在130至160°C的高温范围内,这取决于它们的交联密度。

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