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基于超材料织物的植入式无线组网技术

Implant-to-implant wireless networking with metamaterial textiles.

机构信息

Department of Electrical and Computer Engineering, National University of Singapore, Singapore, 117583, Singapore.

Institute for Health Innovation and Technology, National University of Singapore, Singapore, 117599, Singapore.

出版信息

Nat Commun. 2023 Jul 19;14(1):4335. doi: 10.1038/s41467-023-39850-2.

Abstract

Implanted bioelectronic devices can form distributed networks capable of sensing health conditions and delivering therapy throughout the body. Current clinically-used approaches for wireless communication, however, do not support direct networking between implants because of signal losses from absorption and reflection by the body. As a result, existing examples of such networks rely on an external relay device that needs to be periodically recharged and constitutes a single point of failure. Here, we demonstrate direct implant-to-implant wireless networking at the scale of the human body using metamaterial textiles. The textiles facilitate non-radiative propagation of radio-frequency signals along the surface of the body, passively amplifying the received signal strength by more than three orders of magnitude (>30 dB) compared to without the textile. Using a porcine model, we demonstrate closed-loop control of the heart rate by wirelessly networking a loop recorder and a vagus nerve stimulator at more than 40 cm distance. Our work establishes a wireless technology to directly network body-integrated devices for precise and adaptive bioelectronic therapies.

摘要

植入式生物电子设备可以形成分布式网络,能够感知健康状况并在全身提供治疗。然而,目前临床上使用的无线通信方法由于身体的吸收和反射导致信号损失,因此不支持植入物之间的直接网络连接。因此,现有的此类网络示例依赖于需要定期充电的外部中继设备,并且构成单点故障。在这里,我们使用超材料纺织品展示了人体规模的直接植入物到植入物的无线组网。这些纺织品促进了射频信号沿着身体表面的非辐射传播,与没有纺织品相比,被动地将接收信号强度放大了三个数量级以上(>30dB)。使用猪模型,我们通过在超过 40 厘米的距离上无线连接环路记录器和迷走神经刺激器来演示心率的闭环控制。我们的工作为直接网络集成在体内的设备建立了一种无线技术,用于精确和自适应的生物电子治疗。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/69c9/10356940/54d030c19b19/41467_2023_39850_Fig1_HTML.jpg

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