Department of Chemistry , National Taiwan University , Taipei 10617 , Taiwan.
ACS Appl Mater Interfaces. 2019 Mar 13;11(10):10380-10388. doi: 10.1021/acsami.8b21390. Epub 2019 Feb 26.
Flexible pressure sensors have attracted increasing interest because of their potential applications on wearable sensing devices for human-machine interface connections, but challenges regarding material cost, fabrication robustness, signal transduction, sensitivity improvement, detection range, and operation convenience still need to be overcome. Herein, with a simple, low-cost, and scalable approach, a flexible and wearable pressure-sensing device fabricated by utilizing filter paper as the solid support, poly(3,4-ethylenedioxythiophene) to enhance conductivity, and silver nanoparticles to provide a rougher surface is introduced. Sandwiching and laminating composite material layers with two thermoplastic polypropylene films lead to robust integration of sensing devices, where assembling four layers of composite materials results in the best sensitivity toward applied pressure. This practical pressure-sensing device possessing properties such as high sensitivity of 0.119 kPa, high durability of 2000 operation cycles, and an ultralow energy consumption level of 10 W is a promising candidate for contriving point-of-care wearable electronic devices and applying it to human-machine interface connections.
柔性压力传感器因其在人机接口连接的可穿戴传感设备中的潜在应用而引起了越来越多的关注,但仍需要克服材料成本、制造稳健性、信号转导、灵敏度提高、检测范围和操作便利性等方面的挑战。在此,我们提出了一种简单、低成本且可扩展的方法,利用滤纸作为固体支撑物、聚(3,4-亚乙基二氧噻吩)来提高导电性以及银纳米粒子来提供更粗糙的表面,制造出了一种灵活且可穿戴的压力传感器。通过将两层热塑性聚丙烯薄膜夹合和层压复合材料层,实现了传感设备的稳健集成,其中组装四层复合材料可使压力传感器对所受压力具有最佳的灵敏度。这种实用的压力传感器具有灵敏度高(0.119 kPa)、耐用性好(2000 次操作循环)和超低能耗水平(10 W)等特性,有望用于制造即时医疗可穿戴电子设备并应用于人机接口连接。