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基于SnO纳米线的柔软、无线供电湿度传感器,用于无线/可穿戴传感器应用。

Soft, Wirelessly Powered Humidity Sensor Based on SnO Nanowires for Wireless/Wearable Sensor Application.

作者信息

Shin Gunchul

机构信息

School of Materials Science and Engineering, University of Ulsan, 12 Technosaneop-ro 55 beon-gil, Nam-gu, Ulsan 44776, Korea.

出版信息

Materials (Basel). 2020 May 8;13(9):2176. doi: 10.3390/ma13092176.

Abstract

Humidity, along with temperature, is one of the most important environmental variables in people's lives. The control of humidity is an important matter that is related to material properties and stability in various industries, as well as basic living. In order to detect humidity, changes in the physical, chemical, and electrical properties of materials related to humidity are used, and studies using various methods are conducted. In this study, a field-effect transistor (FET) device was fabricated on a soft polymer substrate with SnO nanowires (NWs), whose electrical properties change in response to water molecules. The SnO NWs, synthesized by chemical vapor deposition (CVD), were transferred onto a polymer substrate, using a sliding transfer method. The NW FET device, which was connected to an aluminum (Al)-based radio frequency (RF) receiving antenna, was wirelessly operated as a humidity sensor, based on the change in electrical properties of SnO NWs according to the relative humidity (RH). It was configured with a wireless antenna and light emitting diode (LED) indicator to implement a soft wirelessly powered humidity sensor that senses high RH and is expected to be used as a wearable electronic/sensor in the future.

摘要

湿度与温度一样,是人们生活中最重要的环境变量之一。湿度控制是一个重要问题,它涉及到各个行业的材料特性和稳定性以及基本生活。为了检测湿度,人们利用与湿度相关的材料的物理、化学和电学性质的变化,并采用各种方法进行研究。在本研究中,在具有SnO纳米线(NWs)的柔性聚合物基板上制造了一种场效应晶体管(FET)器件,其电学性质会因水分子而发生变化。通过化学气相沉积(CVD)合成的SnO NWs,采用滑动转移法转移到聚合物基板上。连接到铝(Al)基射频(RF)接收天线的NW FET器件,基于SnO NWs的电学性质随相对湿度(RH)的变化,作为湿度传感器进行无线操作。它配置有无线天线和发光二极管(LED)指示器,以实现一种软无线供电的湿度传感器,该传感器可感测高RH,并有望在未来用作可穿戴电子设备/传感器。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e3aa/7254362/eb62a92ff1d8/materials-13-02176-g0A1.jpg

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