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A Structural Approach to Establishing a Platform Chemistry for the Tunable Bulk Electron Beam Cross-Linking of Shape Memory Polymer Systems

机译:为形状记忆聚合物系统的可调本体电子束交联建立平台化学的结构方法

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摘要

The synthetic design and thermomechanical characterization of shape memory polymers (SMPs) built from a new polyurethane chemistry that enables facile, bulk and tunable cross-linking of low-molecular weight thermoplastics by electron beam irradiation is reported in this study. SMPs exhibit stimuli-induced geometry changes and are being proposed for applications in numerous fields. We have previously reported a polyurethane SMP system that exhibits the complex processing capabilities of thermoplastic polymers and the mechanical robustness and tunability of thermomechanical properties that are often characteristic of thermoset materials. These previously reported polyurethanes suffer practically because the thermoplastic molecular weights needed to achieve target cross-link densities severely limit high-throughput thermoplastic processing and because thermally unstable radiation-sensitizing additives must be used to achieve high enough cross-link densities to enable desired tunable shape memory behavior. In this study, we demonstrate the ability to manipulate cross-link density in low-molecular weight aliphatic thermoplastic polyurethane SMPs (Mw as low as ~1.5 kDa) without radiation-sensitizing additives by incorporating specific structural motifs into the thermoplastic polymer side chains that we hypothesized would significantly enhance susceptibility to e-beam cross-linking. A custom diol monomer was first synthesized and then implemented in the synthesis of neat thermoplastic polyurethane SMPs that were irradiated at doses ranging from 1 to 500 kGy. Dynamic mechanical analysis (DMA) demonstrated rubbery moduli to be tailorable between 0.1 and 55 MPa, and both DMA and sol/gel analysis results provided fundamental insight into our hypothesized mechanism of electron beam cross-linking, which enables controllable bulk cross-linking to be achieved in highly processable, low-molecular weight thermoplastic shape memory polymers without sensitizing additives.
机译:在这项研究中报道了形状记忆聚合物(SMP)的合成设计和热力学表征,该形状记忆聚合物是通过一种新型的聚氨酯化学方法构建的,该化学方法能够通过电子束辐照实现低分子量热塑性塑料的容易,大量和可调节的交联。 SMP表现出刺激引起的几何形状变化,并被提议用于许多领域。我们以前曾报道过一种聚氨酯SMP系统,该系统具有热塑性聚合物的复杂加工能力以及热固性材料的机械坚固性和可调节性,而热力学性能通常是热固性材料的特征。这些先前报道的聚氨酯实际上受到损害,因为实现目标交联密度所需的热塑性分子量严重限制了高通量热塑性加工,并且由于必须使用热不稳定的辐射敏感性添加剂来实现足够高的交联密度以实现所需的可调形状记忆行为。在这项研究中,我们证明了通过将特定的结构图案结合到热塑性聚合物侧链中来控制低分子量脂族热塑性聚氨酯SMP(Mw低至〜1.5 kDa)而无需辐射敏化添加剂的交联密度的能力,假设将大大提高对电子束交联的敏感性。首先合成了定制的二醇单体,然后将其用于合成纯净的热塑性聚氨酯SMP,以1至500 kGy的剂量进行辐照。动态力学分析(DMA)表明,橡胶模量可在0.1至55 MPa之间调节,并且DMA和溶胶/凝胶分析结果均提供了对我们假设的电子束交联机理的基本了解,从而使可控的本体交联成为可能。在高度可加工,低分子量的热塑性形状记忆聚合物中实现的,而无需敏化添加剂。

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