CNR Nanotec Institute of Nanotechnology, Via Monteroni, 73100 Lecce, Italy.
CNR Nanotec Institute of Nanotechnology, Via Monteroni, 73100 Lecce, Italy; Department of Mathematics and Physics "Ennio De Giorgi", University of Salento, Omnics Research Group, Via per Monteroni, 73100 Lecce, Italy.
J Colloid Interface Sci. 2022 Feb;607(Pt 2):1436-1445. doi: 10.1016/j.jcis.2021.09.065. Epub 2021 Sep 15.
Nanocarbon/polymeric 3D porous composites have been widely developed as piezoresistive sensors due to their improved performances. Functionalized nanocarbon is usually used to allow its adsorption on the surface of porous polymeric material. However, both the functionalization and the surface localized distribution of the nanomaterial can limit the nanocarbon effect on conductivity and mechanical stability of the material thus affecting piezoresistive performances.
A novel nanoarchitectonics strategy to prepare an elastomeric/carbon nanotubes (CNTs) 3D porous piezoresistive nanocomposite is developed. The fabrication route does not require complex apparatus and CNTs chemical functionalization. Moreover, foams of any shape and dimensions can be produced with neither complex machinery and procedures nor wastes production.
The obtained material is characterized by the presence of well dispersed pristine CNTs on both surface and bulk of the polymeric matrix. The foam exhibited improved piezoresistive properties with excellent compressive stress (>150 kPa), sensitivity at low displacement (29 kPa) and limit of detection for both pressure (2 Pa) and extension (130 nm). These excellent features could allow the use of the as prepared nanocomposite in different applications ranging from wearable devices to robotic or infrastructure monitoring with outstanding flexibility.
由于其性能的提高,纳米碳/聚合物 3D 多孔复合材料已被广泛开发为压阻传感器。功能化纳米碳通常用于允许其吸附在多孔聚合物材料的表面。然而,纳米材料的功能化和表面局部分布都可能限制纳米碳对材料导电性和机械稳定性的影响,从而影响压阻性能。
开发了一种新颖的纳米结构策略来制备弹性体/碳纳米管(CNT)3D 多孔压阻纳米复合材料。该制造路线不需要复杂的仪器和 CNT 化学功能化。此外,任何形状和尺寸的泡沫都可以生产,既不需要复杂的机械和程序,也不会产生废物。
所得到的材料的特点是在聚合物基体的表面和体相上都存在分散良好的原始 CNT。该泡沫表现出优异的压阻性能,具有较高的压缩应力(>150kPa)、在低位移(29kPa)时的灵敏度以及压力(2Pa)和延伸(130nm)的检测极限。这些优异的性能使得所制备的纳米复合材料可以在从可穿戴设备到机器人或基础设施监测等不同应用中使用,具有出色的灵活性。