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通过喷墨打印技术制备的高响应性聚乙二醇/金纳米颗粒薄膜湿度传感器。

Highly Responsive PEG/Gold Nanoparticle Thin-Film Humidity Sensor via Inkjet Printing Technology.

作者信息

Su Chun-Hao, Chiu Hsien-Lung, Chen Yen-Chi, Yesilmen Mazlum, Schulz Florian, Ketelsen Bendix, Vossmeyer Tobias, Liao Ying-Chih

机构信息

Department of Chemical Engineering , National Taiwan University , Taipei 10617 , Taiwan.

Institute of Physical Chemistry , University of Hamburg , Grindelallee 117 , 20146 Hamburg , Germany.

出版信息

Langmuir. 2019 Mar 5;35(9):3256-3264. doi: 10.1021/acs.langmuir.8b03433. Epub 2019 Jan 16.

Abstract

In this study, a highly responsive humidity sensor is developed by printing gold nanoparticles (GNPs) grafted with a hygroscopic polymer. These GNPs are inkjet-printed to form a uniform thin film over an interdigitated electrode with a controllable thickness by adjusting the printing parameters. The resistance of the printed GNP thin film decreases significantly upon exposure to water vapor and exhibits a semi-log relationship with relative humidity (RH). The sensor can detect RH variations from 1.8 to 95% with large resistance changes up to 4 orders of magnitude with no hysteresis and small temperature dependence. In addition, with a small thickness, the sensor can reach absorption equilibrium quickly with response and recovery times of ≤1.2 and ≤3 s, respectively. The fast response to humidity changes also allows the GNP thin-film sensor to distinguish signals from intermittent humidification/dehumidification cycles with a frequency up to 2.5 Hz. The printed sensors on flexible substrates show little sensitivity to bending deformation and can be embedded in a mask for human respiratory detection. In summary, this study demonstrates the feasibility of applying printing technology for the fabrication of thin-film humidity sensors, and the methodology developed can be further applied to fabricate many other types of nanoparticle-based sensor devices.

摘要

在本研究中,通过打印接枝有吸湿聚合物的金纳米颗粒(GNP)开发了一种高响应湿度传感器。这些GNP通过喷墨打印在叉指电极上形成均匀薄膜,通过调整打印参数可控制其厚度。印刷的GNP薄膜在暴露于水蒸气时电阻显著降低,并且与相对湿度(RH)呈现半对数关系。该传感器能够检测1.8%至95%的RH变化,电阻变化高达4个数量级,无滞后现象且温度依赖性小。此外,由于厚度小,传感器能够快速达到吸收平衡,响应时间和恢复时间分别≤1.2秒和≤3秒。对湿度变化的快速响应还使GNP薄膜传感器能够区分频率高达2.5 Hz的间歇性加湿/除湿循环信号。柔性基板上的印刷传感器对弯曲变形几乎不敏感,并且可以嵌入面罩用于人体呼吸检测。总之,本研究证明了应用印刷技术制造薄膜湿度传感器的可行性,并且所开发的方法可进一步应用于制造许多其他类型的基于纳米颗粒的传感器装置。

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