Department of Mechanical and Aerospace Engineering, North Carolina State University, Raleigh, NC, 27695, USA.
Department of Industrial and Systems Engineering, North Carolina State University, Raleigh, NC, 27695, USA.
Adv Mater. 2020 Apr;32(15):e1902343. doi: 10.1002/adma.201902343. Epub 2019 Aug 29.
Nanomaterial-enabled flexible and stretchable electronics have seen tremendous progress in recent years, evolving from single sensors to integrated sensing systems. Compared with nanomaterial-enabled sensors with a single function, integration of multiple sensors is conducive to comprehensive monitoring of personal health and environment, intelligent human-machine interfaces, and realistic imitation of human skin in robotics and prosthetics. Integration of sensors with other functional components promotes real-world applications of the sensing systems. Here, an overview of the design and integration strategies and manufacturing techniques for such sensing systems is given. Then, representative nanomaterial-enabled flexible and stretchable sensing systems are presented. Following that, representative applications in personal health, fitness tracking, electronic skins, artificial nervous systems, and human-machine interactions are provided. To conclude, perspectives on the challenges and opportunities in this burgeoning field are considered.
近年来,基于纳米材料的柔性可拉伸电子产品取得了巨大进展,已经从单一传感器发展到集成传感系统。与具有单一功能的基于纳米材料的传感器相比,多个传感器的集成有利于对个人健康和环境的综合监测、智能人机界面以及机器人技术和假肢中对人体皮肤的真实模拟。将传感器与其他功能组件集成在一起,促进了传感系统的实际应用。在此,本文综述了此类传感系统的设计和集成策略以及制造技术。然后,介绍了具有代表性的基于纳米材料的柔性可拉伸传感系统。接下来,提供了在个人健康、健身追踪、电子皮肤、人工神经系统和人机交互方面的代表性应用。最后,考虑了该新兴领域面临的挑战和机遇。