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首页> 外文期刊>Japanese journal of applied physics >Electroactive nanostructured polymer actuators fabricated using sulfonated styrenic pentablock copolymer/montmorillonite/ionic liquid nanocomposite membranes
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Electroactive nanostructured polymer actuators fabricated using sulfonated styrenic pentablock copolymer/montmorillonite/ionic liquid nanocomposite membranes

机译:使用磺化苯乙烯五嵌段共聚物/蒙脱土/离子液体纳米复合膜制造的电活性纳米结构聚合物促动器

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摘要

High-bendable, air-operable ionic polymer-metal composite (IPMC) actuators composed of electroactive nanostructured middle-block sulfonated styrenic pentablock copolymer (SSPB)/sulfonated montmorillonite (s-MMT) nanocomposite electrolyte membranes with bulky imidazolium ionic liquids (ILs) incorporated were fabricated and their bending actuation performances were evaluated. The SSPB-based IPMC actuators showed larger air-operable bending displacements, higher displacement rates, and higher energy efficiency of actuations without conventional IPMC bottlenecks, Including back relaxation and actuation instability during actuation in air, than the Nafion counterpart. Incorporation of s-MMT into the SSPB matrix further enhanced the actuation performance of the IPMC actuators in terms of displacement, displacement rate, and energy efficiency. The remarkably high performance of the SSPB/s-MMT/IL IPMCs was considered to be due to the microphase-separated large ionic domains of the SSPB (the average diameter of the ionic domain: ca. 20 nm) and the role of s-MMT as an ionic bridge between the ionic domains, and the ion pumping effect of the bulky imidazolium cations of the ILs as well. The microphase-separated nanostructure of the composite membranes caused a high dimensional stability upon swelling in the presence of ILs, which effectively preserved the original electrode resistance against swelling, leading to a high actuation performance of IPMC.
机译:高弯曲度,可气动操作的离子聚合物-金属复合材料(IPMC)执行器,由电活性纳米结构的中嵌段磺化苯乙烯五嵌段共聚物(SSPB)/磺化蒙脱土(s-MMT)纳米复合电解质膜与大体积咪唑离子液体(ILs)组成装配并评估了它们的弯曲驱动性能。与Nafion相比,基于SSPB的IPMC执行器显示出更大的气动弯曲位移,更高的位移速率和更高的执行能量效率,而没有传统IPMC瓶颈,包括在空中执行操作时的后部松弛和执行不稳定性。在位移,位移速率和能量效率方面,将s-MMT并入SSPB矩阵进一步增强了IPMC执行器的执行性能。认为SSPB / s-MMT / IL IPMC的出色性能归因于SSPB的微相分离大离子域(离子域的平均直径:约20 nm)和s-的作用MMT作为离子域之间的离子桥,以及IL的庞大咪唑阳离子的离子泵浦效应。复合膜的微相分离纳米结构在存在IL的情况下溶胀时引起高尺寸稳定性,从而有效保留了抗溶胀的原始电极电阻,从而实现了IPMC的高驱动性能。

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  • 来源
    《Japanese journal of applied physics 》 |2014年第8s3期| 08NC03.1-08NC03.6| 共6页
  • 作者单位

    Center for Materials Architecturing, Institute for Multi-Disciplinary Convergence of Materials, Korea Institute of Science and Technology (KIST), Seoul 136-791, Republic of Korea;

    Center for Materials Architecturing, Institute for Multi-Disciplinary Convergence of Materials, Korea Institute of Science and Technology (KIST), Seoul 136-791, Republic of Korea,Nanomaterials Science and Engineering, University of Science and Technology, Daejeon 305-350, Republic of Korea;

    Center for Materials Architecturing, Institute for Multi-Disciplinary Convergence of Materials, Korea Institute of Science and Technology (KIST), Seoul 136-791, Republic of Korea,Nanomaterials Science and Engineering, University of Science and Technology, Daejeon 305-350, Republic of Korea;

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