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由 CNT 增强的热塑性聚氨酯柔性电容接近传感器,应用于创意产业。

Thermoplastic polyurethane flexible capacitive proximity sensor reinforced by CNTs for applications in the creative industries.

机构信息

Integrated Nanosystems Development Institute (INDI), Indiana University-Purdue University Indianapolis, Indianapolis, IN, 46202, USA.

School of Mechanical Engineering, Purdue University, West Lafayette, IN, 47907, USA.

出版信息

Sci Rep. 2021 Jan 13;11(1):1104. doi: 10.1038/s41598-020-80071-0.

Abstract

Wearable sensing platforms have been rapidly advanced over recent years, thanks to numerous achievements in a variety of sensor fabrication techniques. However, the development of a flexible proximity sensor that can perform in a large range of object mobility remains a challenge. Here, a polymer-based sensor that utilizes a nanostructure composite as the sensing element has been presented for forthcoming usage in healthcare and automotive applications. Thermoplastic Polyurethane (TPU)/Carbon Nanotubes (CNTs) composites are capable of detecting presence of an external object in a wide range of distance. The proximity sensor exhibits an unprecedented detection distance of 120 mm with a resolution of 0.3%/mm. The architecture and manufacturing procedures of TPU/CNTs sensor are straightforward and performance of the proximity sensor shows robustness to reproducibility as well as excellent electrical and mechanical flexibility under different bending radii and over hundreds of bending cycles with variation of 4.7% and 4.2%, respectively. Tunneling and fringing effects are addressed as the sensing mechanism to explain significant capacitance changes. Percolation threshold analysis of different TPU/CNT contents indicated that nanocomposites having 2 wt% carbon nanotubes are exhibiting excellent sensing capabilities to achieve maximum detection accuracy and least noise among others. Fringing capacitance effect of the structure has been systematically analyzed by ANSYS Maxwell (Ansoft) simulation, as the experiments precisely supports the sensitivity trend in simulation. Our results introduce a new mainstream platform to realize an ultrasensitive perception of objects, presenting a promising prototype for application in wearable proximity sensors for motion analysis and artificial electronic skin.

摘要

近年来,得益于各种传感器制造技术的众多成就,可穿戴传感平台得到了迅速发展。然而,开发一种能够在大范围物体移动中工作的灵活接近传感器仍然是一个挑战。在这里,提出了一种基于聚合物的传感器,该传感器利用纳米结构复合材料作为传感元件,即将在医疗保健和汽车应用中使用。热塑性聚氨酯 (TPU)/碳纳米管 (CNT) 复合材料能够在大范围距离内检测到外部物体的存在。接近传感器具有前所未有的检测距离 120mm 和 0.3%/mm 的分辨率。TPU/CNT 传感器的结构和制造工艺简单,接近传感器的性能对可重复性表现出稳健性,并且在不同弯曲半径和数百个弯曲循环下具有出色的电和机械柔韧性,分别变化 4.7%和 4.2%。隧道和边缘效应被视为传感机制,以解释显著的电容变化。不同 TPU/CNT 含量的渗流阈值分析表明,含有 2wt%碳纳米管的纳米复合材料具有出色的传感能力,可在其他方面实现最高检测精度和最小噪声。通过 ANSYS Maxwell(Ansoft)模拟对结构的边缘电容效应进行了系统分析,实验结果精确地支持了模拟中的灵敏度趋势。我们的结果为实现对物体的超灵敏感知引入了一个新的主流平台,为应用于运动分析和人工电子皮肤的可穿戴接近传感器提供了有前景的原型。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c2d8/7806639/85b552cfbdb5/41598_2020_80071_Fig1_HTML.jpg

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