Turco Antonio, Monteduro Anna Grazia, Montagna Francesco, Primiceri Elisabetta, Frigione Mariaenrica, Maruccio Giuseppe
CNR Nanotec Institute of Nanotechnology, Via Monteroni, 73100 Lecce, Italy.
Omnics Research Group, Department of Mathematics and Physics "Ennio De Giorgi", University of Salento, Via per Monteroni, 73100 Lecce, Italy.
Nanomaterials (Basel). 2022 Oct 25;12(21):3741. doi: 10.3390/nano12213741.
The growing interest in piezoresistive sensors has favored the development of numerous approaches and materials for their fabrication. Within this framework, carbon nanotubes (CNTs) are often employed. However, CNTs are a heterogeneous material with different morphological characteristics in terms of length and diameter, and, so far, experimental studies have not usually considered the effect of these parameters on the final sensor performances. Here, we observe how, by simply changing the CNTs length in a solvent-free mechanochemistry fabrication method, different porous 3D elastomeric nanocomposites with different electrical and mechanical properties can be obtained. In particular, the use of longer carbon nanotubes allows the synthesis of porous nanocomposites with better mechanical stability and conductivity, and with a nine-times-lower limit of detection (namely 0.2 Pa) when used as a piezoresistive sensor. Moreover, the material prepared with longer carbon nanotubes evidenced a faster recovery of its shape and electrical properties during press/release cycles, thus allowing faster response at different pressures. These results provide evidence as to how CNTs length can be a key aspect in obtaining piezoresistive sensors with better properties.
对压阻式传感器日益增长的兴趣推动了用于其制造的众多方法和材料的发展。在此框架内,碳纳米管(CNT)经常被采用。然而,碳纳米管是一种在长度和直径方面具有不同形态特征的异质材料,到目前为止,实验研究通常没有考虑这些参数对最终传感器性能的影响。在这里,我们观察到,通过在无溶剂机械化学制造方法中简单地改变碳纳米管的长度,可以获得具有不同电学和力学性能的不同多孔3D弹性体纳米复合材料。特别是,使用更长的碳纳米管能够合成具有更好机械稳定性和导电性的多孔纳米复合材料,并且当用作压阻式传感器时,其检测下限低九倍(即0.2 Pa)。此外,用更长的碳纳米管制备的材料在按压/释放循环过程中显示出其形状和电学性能更快的恢复,从而在不同压力下具有更快的响应。这些结果证明了碳纳米管的长度如何能够成为获得具有更好性能的压阻式传感器的关键因素。