Zhao Beihan, Sivasankar Vishal Sankar, Dasgupta Abhijit, Das Siddhartha
Department of Mechanical Engineering, University of Maryland, College Park, Maryland 20742, United States.
ACS Appl Mater Interfaces. 2021 Mar 3;13(8):10257-10270. doi: 10.1021/acsami.0c18095. Epub 2021 Feb 17.
In this paper, we demonstrate the ability to fabricate temperature sensors by using our newly developed carbon nanotube-graphene oxide (CNT-GO) ink to print temperature-sensitive traces on highly flexible, thin, and adhesive PET (polyethylene terephthalate) tapes, which in turn are integrated on surfaces of different curvatures and wettabilities. Therefore, the strategy provides a facile, low-cost, and environmentally friendly method to deploy printed temperature sensors on surfaces of widely varying curvatures and wettabilities. The temperature sensing occurs through a thermally induced change in the resistance of the printed traces and we quantify the corresponding negative temperature coefficient of resistance (α) for different conditions of curvatures and wettabilities. In addition, we identify that at low temperatures (below 15 °C), the printed traces show an α value that can be as large (in magnitude) as 60 × 10/°C, which is several times higher than the typical α values reported for temperature sensors fabricated with CNT or other materials. Furthermore, we achieve the printing of traces that are only 1-3 μm thick on a 50 μm-thick PET film: therefore, our design represents an ultrathin additively fabricated temperature sensor that can be easily integrated for wearable electronic applications. Finally, we show that despite being subjected to repeated temperature cycling, there is little degradation of the CNT-GO microarchitectures, making these printed traces capable of repeated uses as potential temperature sensors.
在本文中,我们展示了利用新开发的碳纳米管-氧化石墨烯(CNT-GO)墨水在高度灵活、轻薄且具粘性的聚对苯二甲酸乙二酯(PET)胶带上打印温度敏感迹线来制造温度传感器的能力,这些胶带随后被集成到不同曲率和润湿性的表面上。因此,该策略提供了一种简便、低成本且环保的方法,可将印刷温度传感器部署在曲率和润湿性差异很大的表面上。温度传感是通过印刷迹线电阻的热致变化来实现的,并且我们针对不同曲率和润湿性条件量化了相应的负电阻温度系数(α)。此外,我们发现,在低温(低于15°C)下,印刷迹线显示出的α值(绝对值)可高达60×10/°C,这比用碳纳米管或其他材料制造的温度传感器所报道的典型α值高出数倍。再者,我们在50μm厚的PET薄膜上实现了仅1 - 3μm厚的迹线印刷:因此,我们的设计代表了一种超薄的增材制造温度传感器,可轻松集成用于可穿戴电子应用。最后,我们表明,尽管经历了反复的温度循环,CNT-GO微结构几乎没有降解,使得这些印刷迹线能够作为潜在的温度传感器重复使用。