Toward Humidity-Independent Sensitive and Fast Response Temperature Sensors Based on Reduced Graphene Oxide/Poly(vinyl alcohol) Nanocomposites

IF 4.3 3区 材料科学 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC ACS Applied Electronic Materials Pub Date : 2024-05-31 DOI:10.1021/acsaelm.4c00729
Ammar Al-Hamry*, Yang Pan, Mahfujur Rahaman, Oleksandr Selyshchev, Christoph Tegenkamp, Dietrich R. T. Zahn, Igor A. Pašti and Olfa Kanoun*, 
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Abstract

Flexible temperature sensors are becoming increasingly important these days. In this work, we explore graphene oxide (GO)/poly(vinyl alcohol) (PVA) nanocomposites for potential application in temperature sensors. The influence of the mixing ratio of both materials, the reduction temperature, and passivation on the sensing performance has been investigated. Various spectroscopic techniques revealed the composite structure and atomic composition. These were complemented by semiempirical quantum chemical calculations to investigate rGO and PVA interaction. Scanning electron and atomic force microscopy measurements were carried out to evaluate dispersion and coated film quality. The temperature sensitivity has been evaluated for several composite materials with different compositions in the range from 10 to 80 °C. The results show that a linear temperature behavior can be realized based on rGO/PVA composites with temperature coefficients of resistance (TCR) larger than 1.8% K–1 and a fast response time of 0.3 s with minimal hysteresis. Furthermore, humidity influence has been investigated in the range from 10% to 80%, and a minor effect is shown. Therefore, we can conclude that rGO/PVA composites have a high potential for excellent passivation-free, humidity-independent, sensitive, and fast response temperature sensors for various applications. The GO reduction is tunable, and PVA improves the rGO/PVA sensor performance by increasing the tunneling effect and band gap energy, consequently improving temperature sensitivity. Additionally, PVA exhibits minimal water absorption, reducing the humidity sensitivity. rGO/PVA maintains its temperature sensitivity during and after several mechanical deformations.

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基于还原氧化石墨烯/聚乙烯醇纳米复合材料的湿度无关型灵敏快速响应温度传感器
如今,柔性温度传感器正变得越来越重要。在这项研究中,我们探讨了氧化石墨烯(GO)/聚乙烯醇(PVA)纳米复合材料在温度传感器中的潜在应用。研究了两种材料的混合比例、还原温度和钝化对传感性能的影响。各种光谱技术揭示了复合材料的结构和原子成分。此外,还利用半经验量子化学计算研究了 rGO 和 PVA 的相互作用。扫描电子显微镜和原子力显微镜测量评估了分散性和涂膜质量。在 10 至 80 °C 范围内,对几种不同成分的复合材料的温度敏感性进行了评估。结果表明,基于 rGO/PVA 复合材料的线性温度行为可以实现,其电阻温度系数 (TCR) 大于 1.8% K-1,快速反应时间为 0.3 秒,滞后极小。此外,还研究了湿度在 10% 到 80% 范围内的影响,结果显示影响很小。因此,我们可以得出这样的结论:rGO/PVA 复合材料极有可能成为各种应用领域中出色的无钝化、不受湿度影响、灵敏且快速响应的温度传感器。GO 的减少量是可调的,PVA 通过增加隧道效应和带隙能改善了 rGO/PVA 传感器的性能,从而提高了温度灵敏度。此外,PVA 的吸水性极小,从而降低了湿度灵敏度。rGO/PVA 在多次机械变形过程中和变形后仍能保持其温度灵敏度。
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4.30%
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567
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