Macromolecules and Interfaces Institute, Department of Chemistry, Virginia Polytechnic Institute and State University, Blacksburg, VA 24061, USA.
ACS Appl Mater Interfaces. 2009 Mar;1(3):697-702. doi: 10.1021/am8002268.
Ionic polymer-metal composites (IPMCs) are electroactive materials that undergo bending motions with the stimulus of a relatively weak electric field. To understand the fundamental role of the nanoscale morphology of the ionomer membrane matrix in affecting the actuation behavior of IPMC systems, we evaluated the actuation performance of IPMC materials subjected to uniaxial orientation. The perfluorinated ionomer nanostructure altered by uniaxial orientation mimicks the fibrillar structure of biological muscle tissue and yields a new anisotropic actuation response. It is evident that IPMCs cut from films oriented perpendicular to the draw direction yield tip-displacement values that are significantly greater than those of unoriented IPMCs. In contrast, IPMCs cut from films oriented parallel to the draw direction appear to resist bending and yield tip-displacement values that are much less than those of unoriented IPMCs. This anisotropic actuation behavior is attributed, in part, to the contribution of the fibrillar morphology to the bulk bending modulus. As an additional contribution, electrically stimulated water swelling perpendicular to the rodlike aggregate axis facilitates bending in the perpendicular direction.
离子聚合物-金属复合材料(IPMCs)是一种电活性材料,在相对较弱的电场刺激下会发生弯曲运动。为了了解离聚物膜基质的纳米形貌在影响 IPMC 系统致动行为方面的基本作用,我们评估了经受单轴取向的 IPMC 材料的致动性能。通过单轴取向改变的全氟离子聚合物纳米结构模仿了生物肌肉组织的纤维状结构,并产生了新的各向异性致动响应。显然,从垂直于拉伸方向取向的薄膜切割的 IPMC 产生的尖端位移值明显大于未取向的 IPMC。相比之下,从平行于拉伸方向取向的薄膜切割的 IPMC 似乎抵抗弯曲,并且产生的尖端位移值远小于未取向的 IPMC。这种各向异性的致动行为部分归因于纤维形态对体弯曲模量的贡献。作为额外的贡献,垂直于棒状聚集体轴的电刺激水膨胀有助于在垂直方向弯曲。