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一种用于脊髓损伤后运动功能恢复的全集成无线片上系统。

A Fully Integrated Wireless SoC for Motor Function Recovery After Spinal Cord Injury.

作者信息

Lo Yi-Kai, Kuan Yen-Cheng, Culaclii Stanislav, Kim Brian, Wang Po-Min, Chang Chih-Wei, Massachi Jonathan A, Zhu Minji, Chen Kuanfu, Gad Parag, Edgerton V Reggie, Liu Wentai

出版信息

IEEE Trans Biomed Circuits Syst. 2017 Jun;11(3):497-509. doi: 10.1109/TBCAS.2017.2679441. Epub 2017 May 19.

Abstract

This paper presents a wirelessly powered, fully integrated system-on-a-chip (SoC) supporting 160-channel stimulation, 16-channel recording, and 48-channel bio-impedance characterization to enable partial motor function recovery through epidural spinal cord electrical stimulation. A wireless transceiver is designed to support quasi full-duplex data telemetry at a data rate of 2 Mb/s. Furthermore, a unique in situ bio-impedance characterization scheme based on time-domain analysis is implemented to derive the Randles cell electrode model of the electrode-electrolyte interface. The SoC supports concurrent stimulation and recording while the high-density stimulator array meets an output compliance voltage of up to ±10 V with versatile stimulus programmability. The SoC consumes 18 mW and occupies a chip area of 5.7 mm × 4.4 mm using 0.18 μm high-voltage CMOS process. In our in vivo rodent experiment, the SoC is used to perform wireless recording of EMG responses while stimulation is applied to enable the standing and stepping of a paralyzed rat. To facilitate the system integration, a novel thin film polymer packaging technique is developed to provide a heterogeneous integration of the SoC, coils, discrete components, and high-density flexible electrode array, resulting in a miniaturized prototype implant with a weight and form factor of 0.7 g and 0.5 cm, respectively.

摘要

本文介绍了一种无线供电的全集成片上系统(SoC),它支持160通道刺激、16通道记录和48通道生物阻抗表征,以通过硬膜外脊髓电刺激实现部分运动功能恢复。设计了一种无线收发器,以2 Mb/s的数据速率支持准全双工数据遥测。此外,还实现了一种基于时域分析的独特原位生物阻抗表征方案,以推导电极-电解质界面的兰德尔电池电极模型。该SoC支持同时进行刺激和记录,而高密度刺激器阵列具有高达±10 V的输出耐压,并具有通用的刺激可编程性。该SoC采用0.18μm高压CMOS工艺,功耗为18 mW,芯片面积为5.7 mm×4.4 mm。在我们的体内啮齿动物实验中,该SoC用于在施加刺激时对肌电图反应进行无线记录,以使瘫痪大鼠能够站立和行走。为了便于系统集成,开发了一种新颖的薄膜聚合物封装技术,以实现SoC、线圈、分立元件和高密度柔性电极阵列的异构集成,从而得到一个重量为0.7 g、外形尺寸为0.5 cm的小型化植入原型。

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A wirelessly programmable chip for multi-channel neural stimulation.一种用于多通道神经刺激的无线可编程芯片。
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