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新型透明柔性电容式微加工超声换能器的研制。

Development of a Novel Transparent Flexible Capacitive Micromachined Ultrasonic Transducer.

机构信息

Department of Mechanical Engineering, National Kaohsiung University of Applied Sciences, 415 Jian Gong Rd., Sanmin Dist., Kaohsiung 80778, Taiwan.

出版信息

Sensors (Basel). 2017 Jun 20;17(6):1443. doi: 10.3390/s17061443.

Abstract

This paper presents the world's first transparent flexible capacitive micromachined ultrasonic transducer (CMUT) that was fabricated through a roll-lamination technique. This polymer-based CMUT has advantages of transparency, flexibility, and non-contacting detection which provide unique functions in display panel applications. Comprising an indium tin oxide-polyethylene terephthalate (ITO-PET) substrate, SU-8 sidewall and vibrating membranes, and silver nanowire transparent electrode, the transducer has visible-light transmittance exceeding 80% and can operate on curved surfaces with a 40 mm radius of curvature. Unlike the traditional silicon-based high temperature process, the CMUT can be fabricated on a flexible substrate at a temperature below 100 °C to reduce residual stress introduced at high temperature. The CMUT on the curved surfaces can detect a flat target and finger at distances up to 50 mm and 40 mm, respectively. The transparent flexible CMUT provides a better human-machine interface than existing touch panels because it can be integrated with a display panel for non-contacting control in a health conscious environment and the flexible feature is critical for curved display and wearable electronics.

摘要

本文提出了世界上第一个透明柔性电容式微机械超声换能器(CMUT),它是通过卷对卷技术制造的。这种基于聚合物的 CMUT 具有透明性、柔韧性和非接触式检测的优点,为显示面板应用提供了独特的功能。该换能器由铟锡氧化物-聚对苯二甲酸乙二醇酯(ITO-PET)基底、SU-8 侧壁和振动膜以及银纳米线透明电极组成,可见光透过率超过 80%,可以在曲率半径为 40 毫米的曲面上运行。与传统的硅基高温工艺不同,CMUT 可以在低于 100°C 的温度下在柔性基底上制造,以减少高温下引入的残余应力。在曲面上的 CMUT 可以分别检测到 50 毫米和 40 毫米距离的平面目标和手指。透明柔性 CMUT 提供了比现有触摸面板更好的人机界面,因为它可以与显示面板集成,用于在注重健康的环境中进行非接触式控制,而柔性特性对于曲面显示和可穿戴电子设备至关重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e782/5492855/43b9b6ebf9d8/sensors-17-01443-g001.jpg

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