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Wirelessly powered stimulator and recorder for neuronal interfaces

机译:用于神经元接口的无线供电的刺激器和录像机

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Functional Electrical Stimulation (FES) is widely adopted in neuro-engineering to partially alleviate diseased functions in the brain, retina and cochlea. We present a 32-channel wirelessly powered constant current stimulator and low power recording amplifier for FES based applications. The biphasic stimulator utilizes innovative techniques for matched positive/ negative currents and thus improves charge balance. Electrode discharging scheme is added for stimulation artifact suppression. An improved low power amplifier is incorporated for evoked response measurements. Electrical performance is characterized using simulated electrode-electrolyte impedance. Closed-loop stimulation and recording experiments have been performed. Stimulation current magnitudes of 2μA–200μA and up to 400Hz rate have been realized. Theory and limitation of discharging scheme is explored while suppressing artifacts down to 3ms. Alternate anodic-first and cathodic-first stimulation pulses are adopted for enhanced charge balancing. The low power amplifier exhibits gain of 1200 and bandwidth 350Hz–1.02KHz. A multiplexer/ demultiplexer is used to share the front-end among 32 electrodes. The inductively coupled wireless energy harvester works at 125KHz–135KHz that can remotely deliver 1.4mW at 1cm distance to an equivalent of 10K load. The system can accommodate multielectrodes with impedance up to 100KΩ. The entire hybrid analog-digital system consumes 360μW quiescent power. Miniaturization makes it suitable for in-vivo applications.
机译:功能性电刺激(FES)在神经工程中被广泛采用,以部分缓解脑,视网膜和耳蜗中的病毒功能。我们为基于FES的应用提供了一个32通道无线动力恒流刺激和低功率记录放大器。双相刺激器利用匹配的正/负电流的创新技术,从而提高电荷平衡。添加电极放电方案用于刺激伪影抑制。有一种改进的低功率放大器,用于诱发响应测量。使用模拟电极电解质阻抗的特征在于电气性能。已经进行了闭环刺激和记录实验。刺激电流幅度为2μA-200μA和高达400Hz的速率。探索了理论和放电方案的限制,同时抑制了下降到3ms的伪影。采用替代anodic-1和阴极 - 第一刺激脉冲以增强电荷平衡。低功率放大器表现出1200和带宽350Hz-1.02kHz的增益。多路复用器/多路分解器用于在32个电极之间共享前端。电感耦合的无线能量收割机适用于125kHz-135kHz,可以在1cm距离下远程送达1.4mW,相当于10k负载。该系统可以容纳具有高达100kΩ的阻抗的多电极。整个混合式模拟数字系统消耗360μW静态电源。小型化使其适用于体内应用。

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