基于网格型微结构聚合物纳米复合材料的柔性压阻触觉传感器。

ty10086 提交于 周三, 08/25/2021 - 16:17
文章英文标题
Flexible Piezoresistive Tactile Sensor Based on Polymeric Nanocomposites with Grid-Type Microstructure.
正文
利用纳米复合材料制作的压阻触觉传感器具有良好的柔韧性、电学性能和灵敏度。但是,通过实现填料材料的均匀分散和利用有效的结构设计来改善触觉感知性能,可以显著提高感知性能,特别是在低压范围。本研究以多壁碳纳米管( MWCNTs )为导电填料,聚二甲基硅氧烷( PDMS )为聚合物基体,制备了一种新型的具有网格状微结构的柔性压阻触觉传感器。研究重点在于通过使填料材料均匀分散,优化传感器设计和结构,提高触觉传感器性能。采用相同的网格结构传感层(线宽、线间距、厚度为1 mm ),MWCNTs在PDMS中的掺杂质量比在1 ~ 10 wt . %之间变化。掺杂比例为7 wt . %的传感器性能最稳定,在10 ~ 20 kPa的低气压范围内的灵敏度为6.821 kPa - 1,在30 ~ 200 kPa的饱和范围内的灵敏度为0.029 kPa - 1。并对网格结构尺寸进行了优化,分析了网格结构、灵敏度和传感范围之间的关系。为了验证压阻原理,推导了压力与电阻输出的关系式。对于网格结构,线宽、线间距和厚度分别为1、1和0.5 mm的网格结构响应最为稳定和改善。在50 ~ 130kPa的低压范围内,灵敏度为0.2704 kPa - 1;在140 ~ 200kPa的饱和范围内,灵敏度为0.0968 kPa - 1。压阻响应主要与量子隧穿效应有关,可以根据掺杂剂浓度和网格微结构进行优化。此外,触觉传感器表现出可重复响应,在10 ~ 40℃范围内温度变化和50 ~ 80 %湿度变化不影响精度。在1 N法向力作用下进行10 200次循环加载试验,最大误差波动约为5.6 %,响应延迟时间约为1.6 ms。因此,该触觉传感器在触觉检测和抓取等可穿戴技术和机器人应用中具有实际可行性。
文章内容(英文)
Piezoresistive tactile sensors made using nanocomposite polymeric materials have been shown to possess good flexibility, electrical performance, and sensitivity. However, the sensing performance, especially in the low-pressure range, can be significantly improved by enabling uniform dispersion of the filler material and utilization of effective structural designs that improve the tactile sensing performance. In this study, a novel flexible piezoresistive tactile sensor with a grid-type microstructure was fabricated using polymer composites comprising multi-walled carbon nanotubes (MWCNTs) as the conductive filler and polydimethylsiloxane (PDMS) as the polymeric matrix. The research focused on improving the tactile sensor performance by enabling uniform dispersion of filler material and optimizing sensor design and structure. The doping weight ratio of MWCNTs in PDMS varied from 1 wt.% to 10 wt.% using the same grid structure-sensing layer (line width, line spacing, and thickness of 1 mm). The sensor with a 7 wt.% doping ratio had the most stable performance, with an observed sensitivity of 6.821 kPa-1 in the lower pressure range of 10-20 kPa and 0.029 kPa-1 in the saturation range of 30-200 kPa. Furthermore, the dimensions of the grid structure were optimized and the relationship between grid structure, sensitivity, and sensing range was correlated. The equation between pressure and resistance output was derived to validate the principle of piezoresistance. For the grid structure, dimensions with line width, line spacing, and thickness of 1, 1, and 0.5 mm were shown to have the most stable and improved response. The observed sensitivity was 0.2704 kPa-1 in the lower pressure range of 50-130 kPa and 0.0968 kPa-1 in the saturation range of 140-200 kPa. The piezoresistive response, which was mainly related to the quantum tunneling effect, can be optimized based on the dopant concentration and the grid microstructure. Furthermore, the tactile sensor showed a repeatable response, and the accuracy was not affected by temperature changes in the range of 10 to 40 °C and humidity variations from 50 to 80%. The maximum error fluctuation was about 5.6% with a response delay time of about 1.6 ms when cyclic loading tests were performed under a normal force of 1 N for 10,200 cycles. Consequently, the proposed tactile sensor shows practical feasibility for a wide range of wearable technologies and robotic applications such as touch detection and grasping.
来源出处
Journal|[J]MicromachinesVolume 12, Issue 4. 2021.
DOI
https://doi.org/10.3390/MI12040452

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