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Implanted Miniaturized Antenna for Brain Computer Interface Applications: Analysis and Design

机译:用于脑计算机接口应用的植入式微型天线:分析和设计

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摘要

Implantable Brain Computer Interfaces (BCIs) are designed to provide real-time control signals for prosthetic devices, study brain function, and/or restore sensory information lost as a result of injury or disease. Using Radio Frequency (RF) to wirelessly power a BCI could widely extend the number of applications and increase chronic in-vivo viability. However, due to the limited size and the electromagnetic loss of human brain tissues, implanted miniaturized antennas suffer low radiation efficiency. This work presents simulations, analysis and designs of implanted antennas for a wireless implantable RF-powered brain computer interface application. The results show that thin (on the order of 100 micrometers thickness) biocompatible insulating layers can significantly impact the antenna performance. The proper selection of the dielectric properties of the biocompatible insulating layers and the implantation position inside human brain tissues can facilitate efficient RF power reception by the implanted antenna. While the results show that the effects of the human head shape on implanted antenna performance is somewhat negligible, the constitutive properties of the brain tissues surrounding the implanted antenna can significantly impact the electrical characteristics (input impedance, and operational frequency) of the implanted antenna. Three miniaturized antenna designs are simulated and demonstrate that maximum RF power of up to 1.8 milli-Watts can be received at 2 GHz when the antenna implanted around the dura, without violating the Specific Absorption Rate (SAR) limits.
机译:植入式大脑计算机接口(BCI)旨在为假体设备提供实时控制信号,研究大脑功能和/或恢复由于受伤或疾病而丢失的感觉信息。使用射频(RF)为BCI无线供电可广泛扩展应用范围,并提高慢性体内生存能力。然而,由于人脑组织的尺寸有限和电磁损耗,植入的微型天线遭受低辐射效率。这项工作为无线可植入射频供电的脑计算机接口应用提供了植入天线的仿真,分析和设计。结果表明,薄的(约100微米厚)生物相容性绝缘层会显着影响天线性能。生物相容性绝缘层的介电特性的适当选择以及人脑组织内部的植入位置可以促进植入天线有效地接收RF功率。尽管结果表明人头形状对植入式天线性能的影响可以忽略不计,但植入式天线周围的脑组织的本构性质会显着影响植入式天线的电特性(输入阻抗和工作频率)。模拟了三种小型化的天线设计,这些天线设计表明,当天线植入硬脑膜周围时,在2 GHz时可以接收高达1.8毫瓦的最大RF功率,而不会违反比吸收率(SAR)的限制。

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