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A Fully-Implantable Cochlear Implant SoC With Piezoelectric Middle-Ear Sensor and Arbitrary Waveform Neural Stimulation

机译:具有压电中耳传感器和任意波形神经刺激的全植入式人工耳蜗植入物soC

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摘要

A system-on-chip for an invisible, fully-implantable cochlear implant is presented. Implantable acoustic sensing is achieved by interfacing the SoC to a piezoelectric sensor that detects the sound-induced motion of the middle ear. Measurements from human cadaveric ears demonstrate that the sensor can detect sounds between 40 and 90 dB SPL over the speech bandwidth. A highly-reconfigurable digital sound processor enables system power scalability by reconfiguring the number of channels, and provides programmable features to enable a patient-specific fit. A mixed-signal arbitrary waveform neural stimulator enables energy-optimal stimulation pulses to be delivered to the auditory nerve. The energy-optimal waveform is validated with in-vivo measurements from four human subjects which show a 15% to 35% energy saving over the conventional rectangular waveform. Prototyped in a 0.18 μm high-voltage CMOS technology, the SoC in 8-channel mode consumes 572 μW of power including stimulation. The SoC integrates implantable acoustic sensing, sound processing, and neural stimulation on one chip to minimize the implant size, and proof-of-concept is demonstrated with measurements from a human cadaver ear.
机译:提出了一种用于不可见的,完全可植入的人工耳蜗的芯片系统。通过将SoC与检测中耳的声音感应运动的压电传感器连接,可以实现植入式声音感应。来自人体尸体耳朵的测量结果表明,该传感器可以在整个语音带宽上检测到40至90 dB SPL之间的声音。高度可重新配置的数字声音处理器通过重新配置通道数来实现系统电源的可扩展性,并提供可编程功能以实现针对特定患者的配合。混合信号任意波形神经刺激器可使能量最佳的刺激脉冲传递到听神经。能量最佳波形已通过对四个人的体内测量结果进行验证,与常规矩形波形相比,该波形显示节能15%至35%。采用0.18μm高压CMOS技术的原型,处于8通道模式的SoC消耗572μW的功率,包括激励。 SoC将可植入的声音感应,声音处理和神经刺激集成在一个芯片上,以最大程度地减小植入物的尺寸,并通过人类尸体耳朵的测量来证明概念验证。

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