材料科学
弹性体
压阻效应
磁滞
触觉传感器
电极
灵敏度(控制系统)
光电子学
复合材料
碳纳米管
压力传感器
渗透(认知心理学)
纳米技术
声学
电子工程
计算机科学
机械工程
机器人
物理
生物
工程类
物理化学
人工智能
神经科学
化学
量子力学
作者
Cuiyuan Liang,Jing-Qi SUN,Zhiyuan Liu,Gongwei Tian,Yan Liu,Qinyi Zhao,Dan Yang,Jianhui Chen,Bowen Zhong,Ming Zhu,Hongbo Xü,Dianpeng Qi
标识
DOI:10.1021/acsami.2c21241
摘要
Flexible piezoresistive tactile sensors are widely used in wearable electronic devices because of their ability to detect mechanical stimuli. However, achieving high sensitivity and low hysteresis over a broad detection range remains a challenge with current piezoresistive tactile sensors. To address these obstacles, we designed elastomeric micropyramid arrays with different heights to redistribute the strain on the electrode. Furthermore, we mixed single-walled carbon nanotubes in the elastomeric micropyramids to compensate for the conductivity loss caused by random cracks in the gold film and increase the adhesion strength between the gold film (deposited on the pyramid surface) and the elastomer. Thus, the energy loss of the sensor during deformation and hysteresis (∼2.52%) was effectively reduced. Therefore, under the synactic effects of the percolation effect, tunnel effect, and multistage strain distribution, the as-prepared sensor exhibited a high sensitivity (1.28 × 106 kPa-1) and a broad detection range (4.51-54837.06 Pa). The sensitivity was considerably higher than those of most flexible pressure sensors with a microstructure design. As a proof of concept, the sensors were successfully applied in the fields of health monitoring and human-machine interaction.
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