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首页> 外文期刊>Sensors and Actuators, A. Physical >Novel ionic polymer-metal composites equipped with physically loaded particulate electrodes as biomimetic sensors, actuators and artificial muscles
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Novel ionic polymer-metal composites equipped with physically loaded particulate electrodes as biomimetic sensors, actuators and artificial muscles

机译:新型离子聚合物-金属复合材料,配备有物理负载的颗粒电极,可作为仿生传感器,促动器和人造肌肉

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Described is a novel fabrication process of manufacturing ionic polymer-metal composites (IPMCs) equipped with physically loaded electrodes as biomimetic sensors, actuators arid artificial muscles. The underlying principle of processing this novel IPMCs is to first physically load a conductive primary powder layer into the polymer (ionomeric) network forming a dispersed particulate layer. This primary layer functions as a major conductive medium in the composite. Subsequently, this primary layer of dispersed particles of a conductive material is further secured within the polymer network with smaller secondary particles via chemical plating, which uses reducing agents to load another phase of conductive particles within the first layer. In turn, both primary and secondary particles can be secured within the polymer network and reduce the potential intrinsic contact resistance between large primary particles. Furthermore, electroplating can be applied to integrate the entire primary and secondary conductive phases and serve as another effective electrode. In this paper, we describe the details of this newly developed technique to efficiently produce an IPMC loaded with spherical silver particles (D-10 < 0.8 mum, D-50 < 1.5 mum, D-90 < 2.5 mum; A(sur) < 6 m(2)/g) and subsequently secured by palladium (D-p similar to 50 nm, via a chemical reducing process). It has been established that such an IPMC is quite comparable in force and displacement performance with the traditional platinum loaded and gold electroplated IPMCs but can be manufactured at about 1/10th of the cost. Yet it produces a low surface resistivity (less than 1 Omega per square), which is highly desirable in creating more uniform deformation. (C) 2002 Elsevier Science B.V All rights reserved. [References: 16]
机译:描述了一种新颖的制造工艺,该工艺用于制造配备有物理负载电极作为仿生传感器,致动器和人造肌肉的离子聚合物-金属复合材料(IPMC)。处理这种新型IPMC的基本原理是,首先将导电的初级粉末层物理加载到形成分散颗粒层的聚合物(离聚物)网络中。该主要层用作复合材料中的主要导电介质。随后,通过化学镀将导电材料的分散颗粒的该第一层进一步固定在具有较小次级颗粒的聚合物网络内,该化学镀使用还原剂将另一相的导电颗粒负载在第一层内。继而,初级和次级粒子都可以固定在聚合物网络内,并减小大初级粒子之间的潜在固有接触电阻。此外,可以应用电镀以整合整个初级和次级导电相并用作另一个有效电极。在本文中,我们描述了这种新开发的技术的细节,该技术可以有效地生产出带有球形银颗粒(D-10 <0.8微米,D-50 <1.5微米,D-90 <2.5微米; A(sur)< 6 m(2)/ g),然后通过钯(Dp类似于50 nm,通过化学还原工艺)固定。已经确定,这种IPMC在力和位移性能上可与传统的铂负载和金电镀IPMC相当,但是可以以约1/10的成本制造。然而,它产生了低的表面电阻率(每平方小于1Ω),这在产生更均匀的变形方面是非常需要的。 (C)2002 Elsevier Science B.V保留所有权利。 [参考:16]

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