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Current stimulator IC with adaptive supply regulator for visual prostheses

机译:具有用于视觉假体的自适应电源调节器的电流刺激器IC

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摘要

The current stimulation method is preferred over the voltage stimulation method in the visual prostheses based on functional electrical stimulation (FES) due to its accurate charge control property. Previous current stimulators are generally implemented using a static high supply voltage, because current stimulations require high output voltage compliance. This high static supply voltage, however, may harm the tissues or damage the electrodes. This paper proposes a novel integrated circuit (IC) current stimulator with adaptive supply regulator (ASR). In the proposed circuit, the internal power supply voltage is not static, but adaptively regulated to the minimum required voltage for stimulation. The current feedback loop in the ASR adaptively increases the internal supply voltage when the monitored current is smaller than the desired current, and reduces the internal supply voltage when the monitored current is higher than the desired current. With this method, the internal supply voltage of the stimulator is minimized, and potential damages of the tissues due to high voltage (HV) stimulation can be reduced. Also the current feedback loop in ASR enhances the accuracy of the output current and the robustness to the load impedance. The stimulator IC is fabricated using 0.35 μm bipolar-CMOS-DMOS (BCDMOS) process, and the size of the chip is 2000 μm by 1500 μm.
机译:在基于功能性电刺激(FES)的视觉修复体中,电流刺激方法优于电压刺激方法,因为它具有精确的电荷控制特性。先前的电流激励器通常使用静态高电源电压来实现,因为电流激励需要高输出电压顺从性。但是,这种高静态电源电压可能会伤害组织或损坏电极。本文提出了一种具有自适应电源调节器(ASR)的新型集成电路(IC)电流激励器。在提出的电路中,内部电源电压不是静态的,而是自适应地调节到刺激所需的最小电压。当监视电流小于所需电流时,ASR中的电流反馈环路会自适应地增加内部电源电压,而当监视电流大于所需电流时,则会自适应降低内部电源电压。使用这种方法,可以最小化刺激器的内部电源电压,并且可以减少由于高压(HV)刺激而引起的组织潜在损伤。此外,ASR中的电流反馈环路还提高了输出电流的精度以及对负载阻抗的鲁棒性。刺激器IC使用0.35μm双极CMOS-DMOS(BCDMOS)工艺制造,芯片尺寸为2000μmx 1500μm。

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