Functional Nanostructures Laboratory, National Institute of Material Physics, Atomistilor Str., No. 405A, 077125, Magurele, Ilfov, Romania.
Sci Rep. 2022 Jul 29;12(1):13084. doi: 10.1038/s41598-022-16872-2.
The present work reports a new configuration of soft artificial muscle based on a web of metal covered nylon 6/6 micrometric fibers attached to a thin polydimethylsiloxane (PDMS) film. The preparation process is simple and implies the attachment of metalized fiber networks to a PDMS sheet substrate while heating and applying compression. The resulting composite is versatile and can be cut in different shapes as a function of the application sought. When an electric current passes through the metallic web, heat is produced, leading to local dilatation and to subsequent controlled deformation. Because of this, the artificial muscle displays a fast and ample movement (maximum displacement of 0.8 cm) when applying a relatively low voltage (2.2 V), a consequence of the contrast between the thermal expanse coefficients of the PDMS substrate and of the web-like electrode. It was shown that the electrical current producing this effect can originate from both direct electric contacts, and untethered configurations i.e. radio frequency induced. Usually, for thermal activated actuators the heating is produced by using metallic films or conductive carbon-based materials, while here a fast heating/cooling process is obtained by using microfiber-based heaters. This new approach for untethered devices is an interesting path to follow, opening a wide range of applications were autonomous actuation and remote transfer of energy are needed.
本工作报道了一种基于金属覆盖尼龙 6/6 微纤维网的新型软人工肌肉结构,该纤维网附着在薄的聚二甲基硅氧烷(PDMS)薄膜上。该制备工艺简单,包括在加热和施加压缩的同时将金属化纤维网络附着到 PDMS 片基上。所得复合材料用途广泛,可以根据所寻求的应用切割成不同的形状。当电流通过金属网时,会产生热量,导致局部膨胀和随后的受控变形。因此,当施加相对较低的电压(2.2V)时,人工肌肉会显示出快速而充分的运动(最大位移为 0.8cm),这是 PDMS 基底和线状电极之间热膨胀系数差异的结果。结果表明,产生这种效果的电流可以来自直接电接触,也可以来自无束缚配置,即射频感应。通常,对于热激活致动器,加热是通过使用金属薄膜或基于导电碳的材料来产生的,而在这里,通过使用基于微纤维的加热器可以获得快速的加热/冷却过程。这种用于无束缚设备的新方法是一个有趣的研究方向,可以为需要自主致动和远程能量传输的应用开辟广泛的应用领域。