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Electro-active elastomer composites based on doped titanium dioxide

机译:掺杂二氧化钛的电活性弹性体复合材料

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Recently, electro-active composites have been considered by several researchers because they exhibit an interesting change in their viscoelastic properties under an applied electric field. However, their relative elastic modulus change Delta G' = G'(E) - G'(0) is still low and rarely exceeds 100 kPa. In this article, we demonstrated that, by synthesizing mesoporous aggregates of titanium dioxide (TiO2) and by adsorbing acetylacetone dipolar molecules (Acac) onto the TiO2 surface, the TiO2-Acac/PDMS electrorheological elastomer achieved a relative elastic modulus change Delta G' higher than 500 kPa for an applied electric field of 2 kV mm(-1). The dependence of the electrorheological response of TiO2-Acac/PDMS on the DC electric field strength, AC electric field frequency and shear strain magnitude was discussed regarding the conductivity ratio and permittivity ratio between doped TiO2 semiconducting particles and the PDMS matrix. The high electrorheological performance of TiO2-doped Acac as semiconducting particles filled in the elastomeric matrix makes this kind of material a promising candidate for application in the automotive industry, robotics, vibration isolators, building applications or electro-active actuators.
机译:近来,一些研究人员已经考虑了电活性复合材料,因为它们在施加电场的条件下其粘弹性表现出有趣的变化。然而,它们的相对弹性模量变化ΔG′= G′(E)-G′(0)仍然很低并且很少超过100kPa。在本文中,我们证明了通过合成二氧化钛(TiO2)的中孔聚集体并将乙酰丙酮双极性分子(Acac)吸附到TiO2表面上,TiO2-Acac / PDMS电流变弹性体的相对弹性模量变化Delta G'更高。对于2 kV mm(-1)的施加电场,其应力大于500 kPa。从掺杂的TiO2半导体颗粒与PDMS基体之间的电导率和介电常数比出发,讨论了TiO2-Acac / PDMS的电流变响应对直流电场强度,交流电场频率和剪切应变幅值的依赖性。 TiO2掺杂的Acac作为填充在弹性体基质中的半导体颗粒具有很高的电流变性能,这使得这种材料成为汽车工业,机器人技术,隔振器,建筑应用或电激励执行器的有希望的候选者。

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