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首页> 外文期刊>Journal of Materials Chemistry, C. materials for optical and electronic devices >Largely improved actuation strain at low electric field of dielectric elastomer by combining disrupting hydrogen bonds with ionic conductivity
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Largely improved actuation strain at low electric field of dielectric elastomer by combining disrupting hydrogen bonds with ionic conductivity

机译:通过将破坏氢键与离子电导率结合起来,大大降低了介电弹性体在低电场下的驱动应变

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摘要

Dielectric elastomer actuators (DEAs) can lead to surprisingly large deformations by applying an electric field. The biggest challenge for DEAs is to get a large actuated strain at a low electric field. Herein, a novel approach was used to largely improve the actuated strain at a low electric field of a thermoplastic polyurethane (TPU) dielectric elastomer (DE) by introducing polyethylene glycol (PEG) oligomer into the matrix. The dielectric constant (ε_r) of TPU was obviously increased by adding PEG due to the combined effect of the increase in the interfacial polarization ability of TPU/PEG blends by the ionic conductivity of PEG and the increase in dipole polarization ability of TPU chain segments by the disruption of hydrogen bonds of TPU chains. Meanwhile, the elastic modulus (Y) of TPU was obviously decreased due to the plasticizing effect of PEG on TPU. The simultaneous increase in ε_r and decrease in Y resulted in a 7500% increase in actuated strain at a low electric field (3 V μm~(-1)) by adding PEG. The actuated strain (5.22% at 3 V μm~(-1)) is considerably higher than that of other DEs at the same electric field reported in the literatures. Our work provides a simple and effective method to largely improve the actuated strain at a low electric field of a DE, facilitating the application of DE in biological and medical fields.
机译:介电弹性体致动器(DEA)会通过施加电场而导致惊人的大变形。 DEA的最大挑战是在低电场下获得较大的驱动应变。本文中,通过将聚乙二醇(PEG)低聚物引入基质中,使用新颖的方法来大大改善热塑性聚氨酯(TPU)介电弹性体(DE)在低电场下的致动应变。由于PEG的离子电导率增加TPU / PEG共混物的界面极化能力和PEG的TPU链段的偶极极化能力的增强共同作用,加入PEG可以显着提高TPU的介电常数(ε_r)。 TPU链氢键的破坏。同时,由于PEG对TPU的增塑作用,TPU的弹性模量(Y)明显降低。 ε_r的同时增加和Y的减少导致通过添加PEG在低电场(3 Vμm〜(-1))下的驱动应变增加了7500%。在文献报道的相同电场下,在3 Vμm〜(-1)时的致动应变(5.22%)明显高于其他DE。我们的工作提供了一种简单有效的方法,可在很大程度上改善DE的低电场下的致动应变,从而促进DE在生物和医学领域的应用。

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