Facile Fabrication of Graphene Oxide-based Flexible Temperature Sensor and Improving its Humidity Stability

Sajjad Hajian, S. Ahmadi, D. Maddipatla, P. Eskandari, S. Masihi, M. Panahi, B. B. Narakathu, B. Bazuin, M. Atashbar
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引用次数: 2

Abstract

Graphene derivatives and their composites have attracted significant research interest for the development of novel sensors. Optimizing the formulation of graphene-based composites plays a significant role in developing sensors with improved features, such as high sensitivity and humidity stability. In this work, graphene oxide (GO)-based temperature sensors with high sensitivity were developed on a flexible substrate, using a facile fabrication method, and the humidity stability of the sensors was improved by ~58% while maintaining a high sensitivity towards the temperature. GO ink was used as the sensing layer of one temperature sensor (TS1), and a composite of GO and poly(3,4-ethylenedioxythiophene): poly (styrene sulfonate) (PEDOT:PSS) was used as the sensing layer of another temperature sensor (TS2). The resistive responses of sensors towards varying temperatures ranging from 10 °C to 80 °C were investigated. The temperature sensors showed linear responses, with slopes of -0.98 and -0.69, and correlation coefficients of 0.9994 and 0.998 for TS1 and TS2 temperature sensors, respectively. The temperature coefficient of resistance (TCR) of temperature sensors were calculated as -1.00 and -0.68 %/°C for TS1 and TS2 sensors, respectively. The sensitivity of temperature sensors towards humidity was calculated as 0.107 and 0.045 %/%RH for TS1 and TS2 temperature sensors, respectively. It was observed that adding PEDOT:PSS to GO improves the humidity stability of the temperature sensors by ~58% while maintaining a high TCR.
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基于氧化石墨烯的柔性温度传感器的制备及其湿度稳定性的提高
石墨烯衍生物及其复合材料已经引起了人们对新型传感器发展的极大兴趣。优化石墨烯基复合材料的配方对于开发具有高灵敏度和湿度稳定性等特性的传感器具有重要作用。在这项工作中,利用一种简单的制造方法,在柔性衬底上开发了基于氧化石墨烯(GO)的高灵敏度温度传感器,传感器的湿度稳定性提高了58%,同时保持了对温度的高灵敏度。其中一个温度传感器(TS1)的传感层采用氧化石墨烯油墨,另一个温度传感器(TS2)的传感层采用氧化石墨烯与聚(3,4-乙烯二氧噻吩):聚(苯乙烯磺酸盐)(PEDOT:PSS)的复合材料。研究了传感器在10 ~ 80℃温度下的电阻响应。TS1和TS2温度传感器呈线性响应,斜率分别为-0.98和-0.69,相关系数分别为0.9994和0.998。TS1和TS2温度传感器的电阻温度系数(TCR)分别为-1.00和- 0.68% /°C。TS1和TS2温度传感器对湿度的灵敏度分别为0.107和0.045% /%RH。结果表明,在氧化石墨烯中加入PEDOT:PSS可使温度传感器的湿度稳定性提高约58%,同时保持较高的TCR。
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