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用于水下环境监测的电屏蔽线圈式无电池无线传感

Electrically-Shielded Coil-Enabled Battery-Free Wireless Sensing for Underwater Environmental Monitoring.

作者信息

Wu Ke, Zhu Xia, Anderson Stephan W, Zhang Xin

机构信息

Department of Mechanical Engineering, Boston University, Boston, MA, 02215, USA.

Photonics Center, Boston University, Boston, MA, 02215, USA.

出版信息

Adv Sci (Weinh). 2025 Apr;12(14):e2414299. doi: 10.1002/advs.202414299. Epub 2025 Jan 31.

Abstract

Battery-free wireless sensing in extreme environments, such as conductive solutions, is crucial for long-term, maintenance-free monitoring, eliminating the limitations of battery power and enhancing durability in hard-to-reach areas. However, in such environments, the efficiency of wireless power transfer via radio frequecny (RF) energy harvesting is heavily compromised by signal attenuation and environmental interference, which degrade antenna quality factors and detune resonance frequencies. These limitations create substantial challenges in wirelessly powering miniaturized sensor nodes for underwater environmental monitoring. To overcome these challenges, electrically-shielded coils with coaxially aligned dual-layer conductors are introduced that confine the electric field within the coil's inner capacitance. This configuration mitigates electric field interaction with the surrounding medium, making the coils ideal for use as near-field antennas in aquatic applications. Leveraging these electrically-shielded coils, a metamaterial-enhanced reader antenna was developed and a 3-axis sensor antenna for an near-field communication (NFC)-based system. The system demonstrated improved spectral stability, preserving resonance frequency and maintaining a high-quality factor. This advancement enabled the creation of a battery-free wireless sensing platform for real-time environmental monitoring in underwater environments, even in highly conductive saltwater with salinity levels of up to 3.5%.

摘要

在极端环境(如导电溶液)中实现无电池无线传感,对于长期免维护监测至关重要,它消除了电池供电的限制,并提高了在难以触及区域的耐用性。然而,在这样的环境中,通过射频(RF)能量收集进行无线电力传输的效率会因信号衰减和环境干扰而严重受损,这会降低天线品质因数并使谐振频率失谐。这些限制给为水下环境监测的小型化传感器节点进行无线供电带来了重大挑战。为克服这些挑战,引入了具有同轴对齐双层导体的电屏蔽线圈,该线圈将电场限制在其内部电容内。这种配置减轻了电场与周围介质的相互作用,使这些线圈非常适合用作水生应用中的近场天线。利用这些电屏蔽线圈,开发了一种超材料增强型读取器天线和一种用于基于近场通信(NFC)系统的三轴传感器天线。该系统展示出改进的频谱稳定性,保持了谐振频率并维持了高品质因数。这一进展使得能够创建一个无电池无线传感平台,用于水下环境的实时监测,即使是在盐度高达3.5%的高导电性海水中。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5bde/11984836/ac87c2b032e9/ADVS-12-2414299-g001.jpg

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