体内基本辐射限制在植入式生物电子学天线实际设计中的应用

D. Nikolayev, W. Joseph, M. Zhadobov, L. Martens, R. Sauleau, A. Skrivervik
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引用次数: 0

摘要

人体对可达到的辐射效率的基本限制可以为研究植入式生物电子学天线的工程师提供决策帮助。在本研究中,基于这些理论基础,提出了概念验证的共形微带天线。特别是,最大化有效孔径并在天线上加载介电常数高于周围组织的材料是提高辐射效率的一种有希望的解决方案。工作频率被调整为在深度植入的最佳范围内工作:434、868和1400 MHz。当在具有肌肉等效电磁特性的$\phi \boldsymbol{100}$ - mm球形模体中模拟时,在这些频率下获得的辐射效率分别为0.4%,2.2%和1.2%。将每个频率的辐射性能与基本限制进行比较并接近它们。对原型进行了表征,以进行实验验证。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Application of Fundamental In-Body Radiation Limitations to Practical Design of Antennas for Implantable Bioelectronics
Fundamental in-body limitations on achievable radiation efficiency could provide decision-making assistance to engineers working on antennas for implantable bioelectronics. In this study, proof-of-concept conformal microstrip antennas are proposed based on these theoretical foundations. In particular, maximizing the effective aperture and loading the antenna with materials having the permittivity higher than that of surrounding tissues is a promising solution for increasing the radiation efficiency. The operating frequencies are tuned to operate within the optimal range for deep-body implantation: 434, 868, and 1400 MHz. The achieved radiation efficiencies at these frequencies are 0.4%, 2.2%, and 1.2%, respectively, when simulated in a $\phi \boldsymbol{100}$ – mm spherical phantom with muscle-equivalent electromagnetic properties. The radiation performance at each frequency is compared to the fundamental limitations and closely approach them. Prototypes are characterized for the experimental validation.
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