材料科学
电致伸缩
电介质
复合材料
电活性聚合物
介电弹性体
弹性体
电场
高-κ电介质
压电
铁电聚合物
铁电性
复合数
聚合物
光电子学
物理
量子力学
作者
Q. M. Zhang,Hengfeng Li,Martin Poh,Feng Xia,Z.‐Y. Cheng,Haisheng Xu,Cheng Huang
出处
期刊:Nature
[Nature Portfolio]
日期:2002-09-01
卷期号:419 (6904): 284-287
被引量:1040
摘要
Electroactive polymers (EAPs) can behave as actuators, changing their shape in response to electrical stimulation. EAPs that are controlled by external electric fields--referred to here as field-type EAPs--include ferroelectric polymers, electrostrictive polymers, dielectric elastomers and liquid crystal polymers. Field-type EAPs can exhibit fast response speeds, low hysteresis and strain levels far above those of traditional piezoelectric materials, with elastic energy densities even higher than those of piezoceramics. However, these polymers also require a high field (>70 V micro m(-1)) to generate such high elastic energy densities (>0.1 J cm(-3); refs 4, 5, 9, 10). Here we report a new class of all-organic field-type EAP composites, which can exhibit high elastic energy densities induced by an electric field of only 13 V micro m(-1). The composites are fabricated from an organic filler material possessing very high dielectric constant dispersed in an electrostrictive polymer matrix. The composites can exhibit high net dielectric constants while retaining the flexibility of the matrix. These all-organic actuators could find applications as artificial muscles, 'smart skins' for drag reduction, and in microfluidic systems for drug delivery.
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