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面向亚毫米级植入式接收器的高效超声功率链路的端到端设计。

End-to-End Design of Efficient Ultrasonic Power Links for Scaling Towards Submillimeter Implantable Receivers.

出版信息

IEEE Trans Biomed Circuits Syst. 2018 Oct;12(5):1100-1111. doi: 10.1109/TBCAS.2018.2871470. Epub 2018 Sep 20.

DOI:10.1109/TBCAS.2018.2871470
PMID:30235147
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6269189/
Abstract

We present an analytical framework for optimizing the efficiency of ultrasonic wireless power links for implantable devices scaled down to sub-mm dimensions. Key design insights and tradeoffs are considered for various parameters including the operating frequency, the transmission depth, the size of the transmitter, the impedance and the aperture efficiency of the miniaturized receiver, and the interface between the receiver and the power recovery chain on the implant. The performance of spherically focused transducers as ultrasonic transmitters is analyzed to study the limits and the tradeoffs. Two optimization methods are presented: "Focal Peak" sets the focus of transducers at target depths, and "Global Maximum" maximizes the efficiency globally with off-focus operation. The results are also compared to phased array implementations. To investigate the efficiency of implants, miniaturized receivers made from single crystalline piezoelectric material, PMN-PT, are used as they have resonances in the derived optimal carrier frequency range (∼1-2 MHz). A methodology to achieve an efficient interface to the power electronics is then provided using an optogenetic stimulator as an example platform. The analytical results are verified through both simulations and measurements. Finally, an example ultrasonic link using a spherical transmitter with a radius of 2 cm is demonstrated; link efficiencies of 1.93-0.23% are obtained at 6-10 cm depths with sub-mm receivers for the optogenetic application.

摘要

我们提出了一个分析框架,用于优化缩小到亚毫米尺寸的植入式设备的超声无线功率链路的效率。针对各种参数,包括工作频率、传输深度、发射器尺寸、接收器的阻抗和孔径效率以及植入物上接收器和功率恢复链之间的接口,考虑了关键的设计见解和权衡。分析了球形聚焦换能器作为超声发射器的性能,以研究其限制和权衡。提出了两种优化方法:“焦点峰值”将换能器的焦点设置在目标深度,“全局最大”则在离焦操作下实现全局效率最大化。结果还与相控阵实现进行了比较。为了研究植入物的效率,使用由单晶压电材料 PMN-PT 制成的小型接收器,因为它们在推导的最佳载波频率范围内(约 1-2 MHz)具有共振。然后提供了一种使用光遗传学刺激器作为示例平台实现高效接口到电力电子学的方法。通过仿真和测量验证了分析结果。最后,展示了一个使用半径为 2 cm 的球形发射器的示例超声链路;对于光遗传学应用,在 6-10 cm 的深度下,使用亚毫米接收器,可获得 1.93-0.23%的链路效率。

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