惠斯通大桥
聚二甲基硅氧烷
材料科学
压力传感器
微流控
可穿戴计算机
触觉传感器
纳米技术
振膜(声学)
声学
光电子学
生物医学工程
电压
电气工程
计算机科学
电阻器
机械工程
嵌入式系统
机器人
振动
人工智能
工程类
物理
作者
Yuji Gao,Hiroki Ota,Ethan W. Schaler,Kevin Chen,Allan Zhao,Wei Gao,Hossain M. Fahad,Yonggang Leng,Anzong Zheng,Furui Xiong,Chuchu Zhang,Li‐Chia Tai,Peida Zhao,Ronald S. Fearing,Ali Javey
标识
DOI:10.1002/adma.201701985
摘要
Flexible pressure sensors have many potential applications in wearable electronics, robotics, health monitoring, and more. In particular, liquid-metal-based sensors are especially promising as they can undergo strains of over 200% without failure. However, current liquid-metal-based strain sensors are incapable of resolving small pressure changes in the few kPa range, making them unsuitable for applications such as heart-rate monitoring, which require a much lower pressure detection resolution. In this paper, a microfluidic tactile diaphragm pressure sensor based on embedded Galinstan microchannels (70 µm width × 70 µm height) capable of resolving sub-50 Pa changes in pressure with sub-100 Pa detection limits and a response time of 90 ms is demonstrated. An embedded equivalent Wheatstone bridge circuit makes the most of tangential and radial strain fields, leading to high sensitivities of a 0.0835 kPa-1 change in output voltage. The Wheatstone bridge also provides temperature self-compensation, allowing for operation in the range of 20-50 °C. As examples of potential applications, a polydimethylsiloxane (PDMS) wristband with an embedded microfluidic diaphragm pressure sensor capable of real-time pulse monitoring and a PDMS glove with multiple embedded sensors to provide comprehensive tactile feedback of a human hand when touching or holding objects are demonstrated.
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