Poly(vinylidene fluoroethylene-trifluoroethylene) based high performance electroactive polymers

Q.M. Zhang, F. Xia, Z.Y. Cheng, Haisheng Xu, Heng Li, M. Poh, Cheng Huang
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引用次数: 10

Abstract

This paper reports two classes of electroactive polymers developed recently which exhibit very high strain and elastic energy density. In the first class of the electroactive polymer, i.e., the defect structure modified poly(vinylidene fluoroethylene-trifluoroethylene) polymers, an electrostrictive strain of more than 5% and an elastic energy density above 1 J/cm/sup 3/ can be induced under a field of 150 MV/m. The large electrostrictive strain in this class of polymers originates from the local molecular conformation change between the trans-gauche bonds and all trans bonds, which accompanies the field induced transformation from the non-polar phase to the polar phase. The second class of the polymer is an all-organic composite, which shows a very high dielectric constant (>400) and high strain induced with a low applied electric field (2% strain under 13 MV/m). The strain is proportional to the square of the electric field and the composite has an elastic modulus near 1 GPa.
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聚(偏二氟乙烯-三氟乙烯)基高性能电活性聚合物
本文报道了最近开发的两类具有很高应变和弹性能量密度的电活性聚合物。在第一类电活性聚合物中,即缺陷结构修饰的聚偏乙基氟乙烯-三氟乙烯聚合物,在150 MV/m的电场作用下,可产生大于5%的电致伸缩应变和大于1 J/cm/sup /的弹性能密度。这类聚合物的大电伸缩应变源于反式-间扭键和所有反式键之间的局部分子构象变化,伴随着从非极性相到极性相的场诱导转变。第二类聚合物是全有机复合材料,具有很高的介电常数(>400)和在低外加电场下产生的高应变(13 MV/m下2%的应变)。应变与电场的平方成正比,复合材料的弹性模量接近1 GPa。
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