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Silicone elastomers with high dielectric permittivity and high dielectric breakdown strength based on tunable functionalized copolymers

机译:基于可调节官能化共聚物的具有高介电常数和高介电击穿强度的有机硅弹性体

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摘要

High driving voltages currently limit the commercial potential of dielectric elastomers (DEs). One method used to lower driving voltage is to increase dielectric permittivity of the elastomer. A novel silicone elastomer system with high dielectric permittivity was prepared through the synthesis of siloxane copolymers, thereby allowing for the attachment of high dielectric permittivity molecules through copper-catalyzed azide-alkyne 1,3-dipolar cycloaddition (CuAAC). The synthesized copolymers allow for a high degree of chemical freedom, as several parameters can be varied during the preparation phase. Thus, the space between the functional groups can be varied, by using different dimethylsiloxane spacer units between the dipolar molecules. Furthermore, the degree of functionalization can be varied accurately by changing the feed of dipolar molecules. As a result, a completely tunable elastomer system, with respect to functionalization, is achieved. It is investigated how the different functionalization variables affect essential DE properties, including dielectric permittivity, dielectric loss, elastic modulus and dielectric breakdown strength, and the optimal degree of chemical functionalization, where these important properties are not significantly compromised, is also determined. Thus, the best overall properties were obtained for a silicone elastomer prepared with 5.6 wt% of the dipolar molecule 1-ethynyl-4-nitrobenzene. Here, a high increase in dielectric permittivity (~70%) was obtained without compromising other vital DE properties such as elastic modulus, gel fraction, dielectric and viscous loss and electrical breakdown strength.
机译:当前,高驱动电压限制了介电弹性体(DE)的商业潜力。降低驱动电压的一种方法是增加弹性体的介电常数。通过合成硅氧烷共聚物制备了一种具有高介电常数的新型有机硅弹性体体系,从而允许高介电常数分子通过铜催化的叠氮化物-炔烃1,3-偶极环加成反应(CuAAC)附着。合成的共聚物具有高度的化学自由度,因为在制备阶段可以改变几个参数。因此,通过在偶极分子之间使用不同的二甲基硅氧烷间隔单元,可以改变官能团之间的间隔。此外,可以通过改变偶极分子的进料来精确地改变官能度。结果,就功能性而言,实现了完全可调的弹性体系统。研究了不同的功能化变量如何影响基本的DE性能,包括介电常数,介电损耗,弹性模量和介电击穿强度,以及在不严重损害这些重要性能的情况下优化的化学功能化程度。因此,用5.6重量%的偶极分子1-乙炔基-4-硝基苯制备的有机硅弹性体获得了最佳的总体性能。在此,在不损害其他重要的DE特性(例如弹性模量,凝胶分数,介电和粘性损耗以及电击穿强度)的情况下,介电常数有了很大的提高(〜70%)。

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