Qu Muchao, Xie Zixin, Liu Shuiyan, Zhang Jinzhu, Peng Siyao, Li Zhitong, Lin Cheng, Nilsson Fritjof
School of Automobile and Transportation Engineering, Guangdong Polytechnic Normal University, Guangzhou 510450, China.
Guangzhou Highteen Plastics Co., Ltd., Guangzhou 510800, China.
Nanomaterials (Basel). 2023 Jun 6;13(12):1813. doi: 10.3390/nano13121813.
Elastic strain sensor nanocomposites are emerging materials of high scientific and commercial interest. This study analyzes the major factors influencing the electrical behavior of elastic strain sensor nanocomposites. The sensor mechanisms were described for nanocomposites with conductive nanofillers, either dispersed inside the polymer matrix or coated onto the polymer surface. The purely geometrical contributions to the change in resistance were also assessed. The theoretical predictions indicated that maximum Gauge values are achieved for mixture composites with filler fractions slightly above the electrical percolation threshold, especially for nanocomposites with a very rapid conductivity increase around the threshold. PDMS/CB and PDMS/CNT mixture nanocomposites with 0-5.5 vol.% fillers were therefore manufactured and analyzed with resistivity measurements. In agreement with the predictions, the PDMS/CB with 2.0 vol.% CB gave very high Gauge values of around 20,000. The findings in this study will thus facilitate the development of highly optimized conductive polymer composites for strain sensor applications.
弹性应变传感器纳米复合材料是具有高度科学和商业价值的新兴材料。本研究分析了影响弹性应变传感器纳米复合材料电学行为的主要因素。描述了具有导电纳米填料的纳米复合材料的传感机制,这些纳米填料要么分散在聚合物基质内部,要么涂覆在聚合物表面。还评估了对电阻变化的纯几何贡献。理论预测表明,对于填料分数略高于电渗滤阈值的混合复合材料,尤其是对于在阈值附近电导率急剧增加的纳米复合材料,可实现最大应变片值。因此,制备了含有0 - 5.5体积%填料的PDMS/CB和PDMS/CNT混合纳米复合材料,并通过电阻率测量进行了分析。与预测结果一致,含有2.0体积%炭黑的PDMS/CB给出了约20,000的非常高的应变片值。因此,本研究的结果将有助于开发用于应变传感器应用的高度优化的导电聚合物复合材料。