Jin Yunxia, Yu Mengxia, Nguyen Dat T, Yang Xin, Li Zhipeng, Xiong Ze, Li Chenhui, Liu Yuxin, Kong Yong Lin, Ho John S
Institute for Health Innovation and Technology, National University of Singapore, Singapore 117599, Singapore.
Department of Biomedical Engineering, National University of Singapore, Singapore 119276, Singapore.
Npj Flex Electron. 2024;8(1). doi: 10.1038/s41528-024-00293-4. Epub 2024 Feb 6.
Wireless and battery-free radio-frequency (RF) sensors can be used to create physical spaces that ambiently sense and respond to human activities. Making such sensors ultra-flexible and transparent is important to preserve the aesthetics of living environments, accommodate daily activities, and functionally integrate with objects. However, existing RF sensors are unable to simultaneously achieve high transparency, flexibility, and the electrical conductivity required for remote room-scale operation. Here, we report 4.5 μm RF tag sensors achieving transparency exceeding 90% that provide capabilities in room-scale ambient wireless sensing. We develop a laser-assisted water-based adhesion-reversion process to digitally realize computer-aided RF design at scale. By individually tagging multiple objects and regions of the human body, we demonstrate multiplexed wireless tracking of human-environment interactions and physiological signals at a range of up to 8 m. These radio-frequency identification sensors open opportunities for non-intrusive wireless sensing of daily living spaces for applications in health monitoring and elderly care.
无线且无需电池的射频(RF)传感器可用于创建能够对人类活动进行环境感知并做出响应的物理空间。使此类传感器具有超柔韧性和透明性对于保持生活环境的美观、适应日常活动以及与物体进行功能集成至关重要。然而,现有的射频传感器无法同时实现高透明度、柔韧性以及远程房间规模操作所需的电导率。在此,我们报告了一种4.5微米的射频标签传感器,其透明度超过90%,具备房间规模环境无线传感能力。我们开发了一种激光辅助水基粘附反转工艺,以大规模数字方式实现计算机辅助射频设计。通过分别标记多个物体和人体区域,我们展示了在高达8米的范围内对人类与环境相互作用及生理信号进行多路复用无线跟踪。这些射频识别传感器为日常生活空间的非侵入式无线传感在健康监测和老年护理应用中开辟了机会。