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Effect of chemical structure and crosslinking density on the thermo-mechanical properties and toughness of (meth)acrylate shape memory polymer networks

机译:化学结构和交联密度对(甲基)丙烯酸酯形状记忆聚合物网络的热机械性能和韧性的影响

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摘要

The objective of this work is to characterize and understand structure-mechanical property relationships in (meth)acrylate networks. The networks are synthesized from mono-functional (meth)acrylates with systematically varying sidegroup structure and multi-functional crosslinkers with varying mole fraction and functionality. Fundamental trends are established between the network chemical structure, crosslink density, glass transition temperature, rubbery modulus, failure strain, and toughness. The glass transition temperature of the networks ranged from -29 to 112 degrees C, and the rubbery modulus (E-r) ranged from 2.8 to 129.5 MPa. At low crosslink density (E-r < 10 MPa) network chemistry has a profound effect on network toughness. At high crosslink densities (E-r > 10 MPa), network chemistry has little influence on material toughness. The characteristic ratio of the mono-functional (meth)acrylates' components is unable to predict trends in network toughness as a function of chemical structure, as has been demonstrated in thermoplastics. The cohesive energy density is a better tool for relative prediction of network mechanical properties. Due to superior mechanical properties, networks with phenyl sidegroups are further investigated to understand the effect of phenyl sidegroup structure on toughness. (c) 2008 Elsevier Ltd. All rights reserved.
机译:这项工作的目的是表征和理解(甲基)丙烯酸酯网络中的结构-机械性能关系。该网络由具有系统变化的侧基结构的单官能(甲基)丙烯酸酯和具有不同的摩尔分数和官能度的多功能交联剂合成。在网络化学结构,交联密度,玻璃化转变温度,橡胶模量,破坏应变和韧性之间建立了基本趋势。网络的玻璃化转变温度为-29至112摄氏度,橡胶模量(E-r)为2.8至129.5 MPa。在低交联密度(E-r <10 MPa)下,网络化学对网络韧性有深远的影响。在高交联密度(E-r> 10 MPa)下,网络化学对材料韧性的影响很小。如在热塑性塑料中所证实的,单官能(甲基)丙烯酸酯组分的特征比不能预测网络韧性随化学结构的变化趋势。内聚能密度是相对预测网络机械性能的更好工具。由于优异的机械性能,我们进一步研究了带有苯基侧基的网络,以了解苯基侧基结构对韧性的影响。 (c)2008 Elsevier Ltd.保留所有权利。

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