Wang Kaixuan, Lin Fenge, Lai Daniel T H, Gong Shu, Kibret Behailu, Ali Muhammad Arslan, Yuce Mehmet Rasit, Cheng Wenlong
Department of Chemical Engineering, Monash University Clayton, Victoria 3800, Australia.
College of Engineering and Science, Victoria University, Victoria 8001, Australia.
Nanoscale. 2021 Feb 25;13(7):3957-3966. doi: 10.1039/d0nr07621j.
The past decade has witnessed growing interest in developing soft wearable pressure sensors with the ultimate goal of transforming today's hospital-centered diagnosis to tomorrow's patient-centered bio-diagnosis. In this context, battery-free wireless antenna-based pressure sensors will be highly advantageous for ubiquitous real-time health monitoring. However, current wireless antennas are largely based on thin films from traditional bulk metallic films or novel nanomaterials with an air-cavity design, which can only be operated in a limited pressure range due to the rigidity of active films and/or inherent cavity dimensions. Herein we report a soft battery-free wireless pressure sensor that is based on a three-dimensional (3D) porous gold nanowire foam-elastomer composite and is fabricated by solution-based conformal electroless plating technology, followed by elastomer encapsulation. We observe a transducer trade-off point for our foam antenna, below which the inductive effect and capacitive effect function together and above which the capacitive effect dominates. When an external pressure is applied, initially the inductance and capacitance increase simultaneously but the capacitance decreases afterwards. This can be transformed into a variable resonant frequency that first decreases linearly and then increases (in the capacitance domination pressure range). Importantly, the linear detection range of the sensor can be tuned simply by adjusting the thickness of the sponge or the rigidity of the elastomer (PDMS). We can achieve a wide pressure range of 0-248 kPa, which is the largest linear detection range reported in the literature (typically from 0 to 30 kPa) to the best of our knowledge. As a proof of concept, we further demonstrated that our gold nanowire foam sensor can be used to weigh people under both static and dynamic conditions.
在过去十年中,人们对开发柔软可穿戴压力传感器的兴趣日益浓厚,其最终目标是将当今以医院为中心的诊断转变为未来以患者为中心的生物诊断。在此背景下,基于无电池无线天线的压力传感器对于无处不在的实时健康监测将具有极大优势。然而,目前的无线天线主要基于传统块状金属薄膜或具有空气腔设计的新型纳米材料制成的薄膜,由于有源薄膜的刚性和/或固有腔尺寸的限制,这些天线只能在有限的压力范围内工作。在此,我们报道了一种基于三维(3D)多孔金纳米线泡沫 - 弹性体复合材料的柔软无电池无线压力传感器,该传感器通过基于溶液的保形化学镀技术制备,随后进行弹性体封装。我们观察到我们的泡沫天线存在一个换能器权衡点,在此点以下,电感效应和电容效应共同起作用,在此点以上,电容效应占主导。当施加外部压力时,最初电感和电容同时增加,但随后电容减小。这可以转化为一个可变的谐振频率,该频率首先线性下降,然后增加(在电容主导的压力范围内)。重要的是,传感器的线性检测范围可以通过简单地调整海绵的厚度或弹性体(聚二甲基硅氧烷)的刚度来调节。据我们所知,我们可以实现0 - 248 kPa的宽压力范围,这是文献中报道的最大线性检测范围(通常为0至30 kPa)。作为概念验证,我们进一步证明了我们的金纳米线泡沫传感器可用于在静态和动态条件下对人进行称重。