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New elastomeric silicone based networks applicable as electroactive systems

机译:可用作电活性系统的新型弹性体硅基网络

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摘要

Commercial elastomer materials are available for dielectric electroactive polymer (DEAP) purposes but the applied commercial elastomers have not been developed with the specific application in mind. It is therefore obvious that optimization of the elastomer material should be possible. In this study we focus on optimization of the mechanical properties of the elastomer and show that it is possible to lower the elastic modulus and still not compromise the other required mechanical properties such as fast response, stability, low degree of viscous dissipation and high extensibility. The elastomers are prepared from a vinyl-terminated polydimethyl siloxane (PDMS) and a 4-functional crosslinker by a platinum-catalyzed hydrosilylation reaction between the two reactants. Traditionally, elastomers based on hydrosilylation are prepared via a ‘one-step two-pot’ procedure (with a mix A and a mix B mixed in a given ratio). An alternative network formulation method is adopted in this study in order to obtain an elastomeric system with controlled topology – a so-called bimodal network. Bimodal networks are synthesized using a ‘two-step four-pot’ mixing procedure which results in a nonhomogeneous network structure which is shown to lead to novel mechanical properties due to the low extensibility of the short chains and the high extensibility of the long chains. The first ensures stability and the last retards the rupture process thereby combining two desired properties for DEAP purposes without necessarily compromising the viscous dissipation. Several elastomers are prepared and tested for the linear viscoelastic behaviour, i.e. behaviour in the small-strain limit (up to approximately 10% strain). The bimodal networks are, however, capable of extensions up to several times their initial length but the focus here is the small-strain limit.
机译:商用弹性体材料可用于介电电活性聚合物(DEAP),但尚未针对特定应用开发应用的商用弹性体。因此很明显,应该可以对弹性体材料进行优化。在这项研究中,我们专注于优化弹性体的机械性能,并表明有可能降低弹性模量,但仍不影响其他所需的机械性能,例如快速响应,稳定性,低粘滞度和高延伸性。弹性体由乙烯基封端的聚二甲基硅氧烷(PDMS)和4-官能交联剂通过两种反应物之间的铂催化氢化硅烷化反应制得。传统上,基于氢化硅烷化的弹性体是通过“一步两锅法”制备的(混合物A和混合物B按给定比例混合)。为了获得具有受控拓扑结构的弹性体系统,即本研究中采用了一种替代的网络公式化方法,即所谓的双峰网络。双峰网络是使用“两步四锅”混合程序合成的,这导致了不均匀的网络结构,这种结构由于短链的低延展性和长链的高延展性而导致新型的机械性能。第一个确保稳定性,最后一个延迟破裂过程,从而结合两个DEAP所需的特性而不必损害粘性耗散。制备并测试了几种弹性体的线性粘弹性行为,即在小应变极限(高达约10%应变)下的行为。但是,双峰网络可以扩展到其初始长度的几倍,但是这里的重点是小应变极限。

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