IEEE Trans Biomed Circuits Syst. 2018 Aug;12(4):940-953. doi: 10.1109/TBCAS.2018.2832541. Epub 2018 May 31.
In neuroprostheses applications requiring simultaneous stimulations on a multielectrode array, electric crosstalk, the spatial interaction between electric fields from various electrodes is a major limitation to the performance of multichannel stimulation. This paper presents a multichannel stimulator design that combines high-frequency current stimulation (using biphasic charge-balanced chopped pulse profile) with a switched-capacitor power isolation method. The approach minimizes crosstalk and is particularly suitable for fully integrated realization. A stimulator fabricated in a 0.6 μm CMOS high-voltage technology is presented. It is used to implement a multichannel, high-frequency, power-isolated stimulator. Crosstalk reduction is demonstrated with electrodes in physiological media while the efficacy of the high-frequency stimulator chip is proven in vivo. The stimulator provides fully independent operation on multiple channels and full flexibility in the design of neural modulation protocols.
在需要在多电极阵列上同时进行刺激的神经假体应用中,电串扰是各电极之间电场相互作用的主要限制因素,会影响多通道刺激的性能。本文提出了一种多通道刺激器设计,它结合了高频电流刺激(使用双相电荷平衡斩波脉冲轮廓)和开关电容功率隔离方法。该方法最大限度地减少了串扰,特别适合于完全集成实现。本文介绍了一种采用 0.6μm CMOS 高压技术制造的刺激器。它用于实现多通道、高频、功率隔离刺激器。在生理介质中的电极上证明了减少串扰的效果,同时还在体内证明了高频刺激器芯片的功效。该刺激器在多个通道上提供完全独立的操作,并在神经调制协议的设计上具有完全的灵活性。