Bury Elizabeth, Koh Amanda S
Chemical and Biological Engineering Department, University of Alabama, Tuscaloosa, Alabama 35487, United States.
ACS Appl Mater Interfaces. 2022 Mar 23;14(11):13678-13691. doi: 10.1021/acsami.1c21734. Epub 2022 Mar 8.
Traditional electronic devices are composed of rigid materials and components that tend to be unsuitable for soft robotic and stretchable electronic applications, such as wearable or continuous pressure sensing. However, deformable materials have the potential to improve upon traditional devices through enhanced sensitivity and responsiveness, better conformability and biocompatibility at the human-machine interface, and greater durability. This work presents deformable composite materials composed of the gallium-indium-tin alloy galinstan (GaInSn) that combines the conductivity of a metal and the intrinsic deformability of a liquid. Dispersing galinstan in an elastomer allows for the formation of deformable dielectric materials that have tunable mechanical and electrical behavior, for example, modulus and relative permittivity. Galinstan composites have been shown previously to have a minimal modulus impact on the elastomer but concurrently achieve impressive dielectric performance. However, galinstan dispersions can be costly and face challenges of mechanical and electrical reliability. Thereby, this work investigates multimaterial composites composed of galinstan and a rigid filler, either iron or barium titanate, with respect to morphology, mechanical behavior, dielectric behavior, and pressure sensing performance for the purpose of achieving a balance between a low modulus and superior electrical performance. By combining galinstan and rigid fillers, it was found that the mechanical and electrical properties, such as modulus, permittivity, loss behavior, sensitivity, and linearity of the multimaterial composites can be improved by tuning filler formulation. This suggests that these dielectric materials can be used for sensing applications that can be precisely calibrated to specific material properties and the needs of the user. These deformable multimaterial composites, found to be stretchable and highly responsive in sensing applications, will expand the current mechanical abilities of deformable dielectric materials to improve soft robotic and stretchable electronic devices.
传统电子设备由刚性材料和组件组成,这些材料和组件往往不适用于软机器人和可拉伸电子应用,如可穿戴设备或连续压力传感。然而,可变形材料有潜力通过提高灵敏度和响应性、在人机界面处具有更好的贴合性和生物相容性以及更高的耐用性来改进传统设备。这项工作展示了由镓铟锡合金(Galinstan,GaInSn)组成的可变形复合材料,该合金兼具金属的导电性和液体的固有可变形性。将镓铟锡分散在弹性体中可形成具有可调机械和电学行为(例如模量和相对介电常数)的可变形介电材料。此前已表明,镓铟锡复合材料对弹性体的模量影响最小,但同时能实现令人印象深刻的介电性能。然而,镓铟锡分散体可能成本高昂,并且面临机械和电气可靠性方面的挑战。因此,这项工作研究了由镓铟锡和刚性填料(铁或钛酸钡)组成的多材料复合材料的形态、机械行为、介电行为和压力传感性能,目的是在低模量和优异电气性能之间取得平衡。通过将镓铟锡和刚性填料结合,发现通过调整填料配方可以改善多材料复合材料的机械和电气性能,如模量、介电常数、损耗行为、灵敏度和线性度。这表明这些介电材料可用于传感应用,能够根据特定材料特性和用户需求进行精确校准。这些可变形多材料复合材料在传感应用中具有可拉伸和高响应性,将扩展可变形介电材料当前的机械能力,以改进软机器人和可拉伸电子设备。