Department of Electrical Engineering and Computer Science, University of California, Irvine, CA, USA.
Department of Biomedical Engineering, University of California, Irvine, CA, USA.
Nat Commun. 2023 Nov 18;14(1):7522. doi: 10.1038/s41467-023-43344-6.
The human body exhibits complex, spatially distributed chemo-electro-mechanical processes that must be properly captured for emerging applications in virtual/augmented reality, precision health, activity monitoring, bionics, and more. A key factor in enabling such applications involves the seamless integration of multipurpose wearable sensors across the human body in different environments, spanning from indoor settings to outdoor landscapes. Here, we report a versatile epidermal body area network ecosystem that enables wireless power and data transmission to and from battery-free wearable sensors with continuous functionality from dry to underwater settings. This is achieved through an artificial near field propagation across the chain of biocompatible, magneto-inductive metamaterials in the form of stretchable waterborne skin patches-these are fully compatible with pre-existing consumer electronics. Our approach offers uninterrupted, self-powered communication for human status monitoring in harsh environments where traditional wireless solutions (such as Bluetooth, Wi-Fi or cellular) are unable to communicate reliably.
人体表现出复杂的、空间分布的化学-电-机械过程,这些过程必须被正确捕捉,才能应用于虚拟现实/增强现实、精准健康、活动监测、仿生学等新兴领域。实现这些应用的一个关键因素是在不同环境下(从室内环境到户外景观),在人体上无缝集成多用途可穿戴传感器。在这里,我们报告了一种通用的表皮式人体区域网络生态系统,该系统能够实现无线电源和数据传输,为无电池可穿戴传感器提供连续功能,从干燥环境到水下环境均可使用。这是通过在可拉伸的水溶贴片形式的生物相容性、磁诱导超材料链上实现的人工近场传播来实现的——这些贴片与现有的消费电子产品完全兼容。我们的方法为在传统无线解决方案(如蓝牙、Wi-Fi 或蜂窝网络)无法可靠通信的恶劣环境中提供不间断的、自供电的人体状态监测通信。