首页> 外文会议>Electroactive polymer actuators and devices (EAPAD) 2016 >From Electrode Charges on Dielectric Elastomers to Trapped Charges and Electric Dipoles in Electrets and Ferroelectrets: Fundamental and Applications-Relevant Aspects of Diversity in Electroactive Polymers
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From Electrode Charges on Dielectric Elastomers to Trapped Charges and Electric Dipoles in Electrets and Ferroelectrets: Fundamental and Applications-Relevant Aspects of Diversity in Electroactive Polymers

机译:从介电弹性体上的电极电荷到驻极体和铁电驻极体中的陷留电荷和电偶极子:电活性聚合物多样性的基础和应用相关方面

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Some recent developments in the areas of soft and basically incompressible electro-electrets (dielectric elastomers) with large strains, of anisotropic polymer ferro- or piezo-electrets with quasi-ferroelectric behavior, of molecular-dipole electrets with significant ferro-, pyro- and piezo-electricity, and of space-charge polymer electrets with locally stabilised charges are described. Such materials may be applied, e.g., in soft actuators, energy harvesters and flexible and stretchable sensors for devices such as artificial muscles, electrically controllable refractive and diffractive optics, flexible pyroelectric detectors, motion and displacement sensors, earphones and microphones, ultrasonic transducers, air filters, radiation dosimeters, etc. The performance of dielectric elastomers for actuator, energy-harvester and sensor applications relies on a high relative permittivity and a low elastic modulus. High densities of electric charges in the electrodes are required in order to provide large Maxwell stresses or high energy densities. Significant amounts of localised or trapped charges, as well as electric dipoles from pairs of charges, lead to useful electro-mechanical and mechano-electrical effects (or inverse and direct piezoelectricity, respectively) if they are properly arranged in dielectric materials with extremely low conductivities. Space-charge electret films and ferroelectret systems should exhibit thermal and long-term stability of the trapped charges within the respective materials. Ferroelectric polymers and other polar polymers show useful piezo- and pyroelectric properties if their polymer-chain conformations allow for parallel packing of the molecular dipoles. Space-charge and molecular-dipole electrets are widely applied, e.g. in microphones, air filters, radiation dosimeters, ultrasonic transducers, etc. Basically, the performance of all electro-active polymers relies on the attraction (and repulsion) of electric charges and thus directly on the electro-magnetic interaction, one of the four fundamental interactions.
机译:具有较大应变的柔软且基本不可压缩的电驻极体(介电弹性体),具有准铁电性能的各向异性聚合物铁电或压电驻极体,具有明显铁电,热释电和大分子偶极子驻极体的领域中的一些最新进展描述了压电和具有局部稳定电荷的空间电荷聚合物驻极体。此类材料可应用于例如软致动器,能量采集器以及用于诸如人造肌肉,电可控折射和衍射光学器件,柔性热释电探测器,运动和位移传感器,耳机和麦克风,超声换能器,空气的设备的柔性和可拉伸传感器过滤器,辐射剂量计等。用于执行器,能量收集器和传感器应用的介电弹性体的性能取决于较高的相对介电常数和较低的弹性模量。为了提供大的麦克斯韦应力或高能量密度,需要电极中的电荷高密度。如果将它们适当地布置在电导率极低的介电材料中,则大量的局部或俘获电荷以及成对电荷中的电偶极子会导致有用的机电效应和机电效应(分别是反压电和直接压电) 。空间电荷驻极体薄膜和铁电驻极体系统应表现出各自材料中俘获电荷的热稳定性和长期稳定性。如果铁电聚合物和其他极性聚合物的聚合物链构型允许分子偶极平行堆积,则它们将显示有用的压电和热电特性。空间电荷和分子偶极驻极体被广泛应用,例如基本上,所有电活性聚合物的性能都取决于电荷的吸引(和排斥),因此直接取决于电磁相互作用,这是四个基本原理之一互动。

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