An NFC (near-field communication) based wireless power transfer system design with miniaturized receiver coil for optogenetic implants

D. Biswas, M. Sinclair, J. Hyde, I. Mahbub
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引用次数: 16

Abstract

Optogenetics is the control and monitoring of genetically modified neurons that are responsive to light. It has opened the door for neuroscience research by providing a means to understand the neural circuit dysfunctions such as mood disorders, addiction, and Parkinson's disease. With the growing demand for biomedical implants, the need for a wireless power transfer (WPT) module is also increasing. An essential part of optogenetic implants is the power source of the device. A wireless optogenetic implant requires enough voltage and current to power an LED to stimulate the neurons. In this paper, a WPT module with a transmitter and a compact receiver module are presented. The receiver module contains a miniaturized 6 × 6 mm2 receiver antenna, a Schottky diode, and a mini-LED. The proposed WPT scheme utilizes near-field communication and inductive power transmission at 7.15 MHz frequency. Simulation results using High Frequency Structure Simulator (HFSS) show that the receiver antenna achieves up to a −15.37 dB return loss (Sii) at the resonating frequency. The fabricated WPT system transfers 500 mVpp to the receiver module at 5 mm distance for an input power of 0 dBm. The received power is rectified to provide an average 200 mV DC to turn on a mini-LED. The preliminary simulation and measurement results of the proposed WPT module show a better prospect for future optogenetics based applications.
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基于NFC(近场通信)的光遗传植入物微型接收线圈无线电力传输系统设计
光遗传学是对对光有反应的基因修饰神经元的控制和监测。它提供了一种理解神经回路功能障碍(如情绪障碍、成瘾、帕金森病)的方法,为神经科学研究打开了大门。随着生物医学植入物需求的增长,对无线电力传输(WPT)模块的需求也在增加。光遗传植入物的一个重要部分是设备的电源。无线光遗传植入物需要足够的电压和电流来驱动LED来刺激神经元。本文提出了一种具有发射器和紧凑型接收器的WPT模块。接收模块包含一个小型化的6 × 6 mm2接收天线、一个肖特基二极管和一个微型led。提出的WPT方案利用近场通信和7.15 MHz频率的感应功率传输。高频结构模拟器(HFSS)仿真结果表明,接收机天线在谐振频率处的回波损耗(Sii)可达- 15.37 dB。制造的WPT系统在输入功率为0 dBm的情况下,在5mm距离上向接收模块传输500 mVpp。接收到的功率被整流以提供平均200mv的直流电来打开迷你led。初步的仿真和测量结果表明,该WPT模块在未来的光遗传学应用中具有良好的前景。
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