基于易浸涂法的应变传感石墨烯功能化PET薄膜

Ekin Asim Ozek, Melih Can Tasdelen, Sercan Tanyeli, M. Yapici
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引用次数: 0

摘要

应变传感在人工/虚拟现实应用、物联网和智能可穿戴设备等新兴领域至关重要。用于灵活应用的应变传感器需要可靠,结构合理,并且对于小批量和大批量制造都具有成本效益。要满足所有要求是一项具有挑战性的任务,但还原氧化石墨烯薄膜在高度可接近的衬底上显示足够的涂层,并在压阻应变传感方面提供适当的优点。本文提出了在柔性衬底上单步涂覆氧化石墨烯的高通量和单步材料功能化方法,用于PET衬底上还原氧化石墨烯压阻应变传感。物理图图化的rGO/PET应变传感器由2毫米的线宽沿着50毫米的u形轮廓组成。通过拉曼光谱验证了所提出的用于传感器的rGO/PET薄膜的质量。通过连续循环弯曲测试,证明了还原氧化石墨烯压阻应变传感器的可重复性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Strain Sensing Graphene Functionalized PET Films based on a Facile Dip Coating Approach
Strain sensing is crucial in emerging fields such as artificial/virtual reality applications, Internet-of- Things, and smart wearable devices. Strain sensors for the flexible applications are required to be reliable, structurally sound, and cost-effective for both small and vast fabrication batches. It is a challenging task to meet all the requirements yet reduced graphene oxide films show adequate coating on highly accessible substrates and provide proper figure of merits in terms of piezoresistive strain sensing. In this paper, high throughput single step coating of graphene oxide on flexible substrate and single step material functionalization method is presented for reduced graphene oxide based piezoresistive strain sensing on PET substrate. Physically patterned rGO/PET strain sensors are composed of 2 mm line width along a U-shaped 50 mm outline. Proposed rGO/PET film quality for sensor application was verified by Raman spectroscopy. Operation of the reduced graphene oxide based piezoresistive strain sensor is demonstrated to be repeatable via continuous cyclic bending tests.
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