Department of Physics , National Taiwan University , Taipei 10617 , Taiwan.
ACS Appl Mater Interfaces. 2018 May 23;10(20):17393-17400. doi: 10.1021/acsami.8b04950. Epub 2018 May 9.
In recent years, flexible magnetoelectronics has attracted a great attention for its intriguing functionalities and potential applications, such as healthcare, memory, soft robots, navigation, and touchless human-machine interaction systems. Here, we provide the first attempt to demonstrate a new type of magneto-piezoresistance device, which possesses an ultrahigh sensitivity with several orders of resistance change under an external magnetic field (100 mT). In our device, Fe-Ni alloy powders are embedded in the silver nanowire-coated micropyramid polydimethylsiloxane films. Our devices can not only serve as an on/off switch but also act as a sensor that can detect different magnetic fields because of its ultrahigh sensitivity, which is very useful for the application in analog signal communication. Moreover, our devices contain several key features, including large-area and easy fabrication processes, fast response time, low working voltage, low power consumption, excellent flexibility, and admirable compatibility onto a freeform surface, which are the critical criteria for the future development of touchless human-machine interaction systems. On the basis of all of these unique characteristics, we have demonstrated a nontouch piano keyboard, instantaneous magnetic field visualization, and autonomous power system, making our new devices be integrable with magnetic field and enable to be implemented into our daily life applications with unfamiliar human senses. Our approach therefore paves a useful route for the development of wearable electronics and intelligent systems.
近年来,柔性磁电子学因其引人入胜的功能和潜在应用而受到极大关注,例如医疗保健、记忆、软体机器人、导航和非接触式人机交互系统。在这里,我们首次尝试展示了一种新型的磁压阻器件,该器件在外磁场(100mT)下具有几个数量级的超高电阻变化灵敏度。在我们的器件中,Fe-Ni 合金粉末嵌入在银纳米线涂覆的微金字塔聚二甲基硅氧烷薄膜中。我们的器件不仅可以用作开/关开关,还可以用作传感器,因为其超高灵敏度可以检测不同的磁场,这对于模拟信号通信的应用非常有用。此外,我们的器件包含几个关键特性,包括大面积和易于制造工艺、快速响应时间、低工作电压、低功耗、出色的灵活性以及对自由曲面的令人钦佩的兼容性,这些都是未来非接触式人机交互系统发展的关键标准。基于所有这些独特的特性,我们展示了一个非接触式钢琴键盘、瞬时磁场可视化和自主电源系统,使我们的新器件能够与磁场集成,并能够应用于我们的日常生活中,让人们用陌生的感官去体验。因此,我们的方法为可穿戴电子和智能系统的发展开辟了一条有用的途径。