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基于碳纳米管和石墨烯的仿生电化学致动器。

Carbon nanotube and graphene-based bioinspired electrochemical actuators.

机构信息

i-Lab, Suzhou Institute of Nano-Tech and Nano-Bionics, Chinese Academy of Sciences, Suzhou, 215123, P. R. China.

出版信息

Adv Mater. 2014 Feb;26(7):1025-43. doi: 10.1002/adma.201303432. Epub 2013 Dec 12.

Abstract

Bio-inspired actuation materials, also called artificial muscles, have attracted great attention in recent decades for their potential application in intelligent robots, biomedical devices, and micro-electro-mechanical systems. Among them, ionic polymer metal composite (IPMC) actuator has been intensively studied for their impressive high-strain under low voltage stimulation and air-working capability. A typical IPMC actuator is composed of one ion-conductive electrolyte membrane laminated by two electron-conductive metal electrode membranes, which can bend back and forth due to the electrode expansion and contraction induced by ion motion under alternating applied voltage. As its actuation performance is mainly dominated by electrochemical and electromechanical process of the electrode layer, the electrode material and structure become to be more crucial to higher performance. The recent discovery of one dimensional carbon nanotube and two dimensional graphene has created a revolution in functional nanomaterials. Their unique structures render them intriguing electrical and mechanical properties, which makes them ideal flexible electrode materials for IPMC actuators in stead of conventional metal electrodes. Currently although the detailed effect caused by those carbon nanomaterial electrodes is not very clear, the presented outstanding actuation performance gives us tremendous motivation to meet the challenge in understanding the mechanism and thus developing more advanced actuator materials. Therefore, in this review IPMC actuators prepared with different kinds of carbon nanomaterials based electrodes or electrolytes are addressed. Key parameters which may generate important influence on actuation process are discussed in order to shed light on possible future research and application of the novel carbon nanomateials based bio-inspired electrochemical actuators.

摘要

仿生驱动材料,也称为人工肌肉,因其在智能机器人、生物医学设备和微机电系统中的潜在应用而在近几十年受到了极大关注。其中,离子聚合物金属复合材料(IPMC)驱动器因其在低电压刺激下具有令人印象深刻的高应变量和空气工作能力而受到了广泛研究。典型的 IPMC 驱动器由一层离子导电电解质膜和两层电子导电金属电极膜组成,由于离子在交变施加电压下的运动引起的电极膨胀和收缩,它可以前后弯曲。由于其驱动性能主要由电极层的电化学和机电过程决定,因此电极材料和结构对于更高的性能变得更加关键。一维碳纳米管和二维石墨烯的最近发现引发了功能纳米材料的革命。它们独特的结构赋予了它们有趣的电学和力学性能,这使得它们成为 IPMC 驱动器理想的柔性电极材料,而不是传统的金属电极。尽管目前那些碳纳米材料电极所产生的详细影响尚不清楚,但所呈现的出色驱动性能为我们提供了巨大的动力,以应对理解机制的挑战,从而开发出更先进的驱动器材料。因此,在这篇综述中,我们介绍了使用不同种类的碳纳米材料制备的 IPMC 驱动器。为了阐明新型碳纳米材料基仿生电化学驱动器的可能未来研究和应用,讨论了可能对驱动过程产生重要影响的关键参数。

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