Department of Organic Materials and Fiber Engineering, Smart Wearable Engineering, Information Communication Materials, and Convergence Technology , Soongsil University , 369 Sangdo-ro , Dongjak-gu, Seoul 06978 , Republic of Korea.
Department of Materials Science and Engineering , University of Central Florida , Orlando , Florida 32816 , United States.
ACS Nano. 2019 Oct 22;13(10):10972-10979. doi: 10.1021/acsnano.9b02030. Epub 2019 May 24.
Sensors that reproduce the complex characteristics of cutaneous receptors in the skin have important potential in the context of artificial systems for controlled interactions with the physical environment. Multimodal responses with high sensitivity and wide dynamic range are essential for many such applications. This report introduces a simple, three-dimensional type of microelectromechanical sensor that incorporates monocrystalline silicon nanomembranes as piezoresistive elements in a configuration that enables separate, simultaneous measurements of multiple mechanical stimuli, such as normal force, shear force, and bending, along with temperature. The technology provides high sensitivity measurements with millisecond response times, as supported by quantitative simulations. The fabrication and assembly processes allow scalable production of interconnected arrays of such devices with capabilities in spatiotemporal mapping. Integration with wireless data recording and transmission electronics allows operation with standard consumer devices.
在与物理环境进行受控交互的人工系统中,能够再现皮肤中皮肤感受器复杂特性的传感器具有重要的潜力。对于许多此类应用,具有高灵敏度和宽动态范围的多模态响应是必不可少的。本报告介绍了一种简单的三维微机电传感器,它将单晶硅纳米薄膜作为压阻元件集成在一个配置中,能够分别同时测量多种机械刺激,如法向力、剪切力和弯曲以及温度。该技术提供了具有毫秒级响应时间的高灵敏度测量,这得到了定量模拟的支持。制造和组装过程允许可扩展地生产具有时空映射能力的这种设备的互连阵列。与无线数据记录和传输电子设备的集成允许与标准消费设备一起运行。