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Spiral-Shaped Piezoelectric MEMS Cantilever Array for Fully Implantable Hearing Systems

机译:用于完全植入式听力系统的螺旋形压电MEMS悬臂阵列

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摘要

Fully implantable, self-powered hearing aids with no external unit could significantly increase the life quality of patients suffering severe hearing loss. This highly demanding concept, however, requires a strongly miniaturized device which is fully implantable in the middle/inner ear and includes the following components: frequency selective microphone or accelerometer, energy harvesting device, speech processor, and cochlear multielectrode. Here we demonstrate a low volume, piezoelectric micro-electromechanical system (MEMS) cantilever array which is sensitive, even in the lower part of the voice frequency range (300–700 Hz). The test array consisting of 16 cantilevers has been fabricated by standard bulk micromachining using a Si-on-Insulator (SOI) wafer and aluminum nitride (AlN) as a complementary metal-oxide-semiconductor (CMOS) and biocompatible piezoelectric material. The low frequency and low device footprint are ensured by Archimedean spiral geometry and Si seismic mass. Experimentally detected resonance frequencies were validated by an analytical model. The generated open circuit voltage (3–10 mV) is sufficient for the direct analog conversion of the signals for cochlear multielectrode implants.
机译:无需外部设备即可完全植入的自供电助听器可以显着提高患有严重听力损失的患者的生活质量。但是,这一要求很高的概念要求一种高度小型化的设备,该设备可完全植入中耳/内耳,并且包括以下组件:选频麦克风或加速计,能量采集设备,语音处理器和耳蜗多电极。在这里,我们展示了一种即使在语音频率范围的较低部分(300-700 Hz)也很灵敏的小体积压电微机电系统(MEMS)悬臂阵列。由16个悬臂组成的测试阵列已通过使用绝缘体上硅(SOI)晶片和氮化铝(AlN)作为互补金属氧化物半导体(CMOS)和生物相容性压电材料的标准体微机械加工制成。阿基米德螺旋几何形状和Si地震质量确保了低频和低设备占用空间。通过分析模型验证了实验检测到的共振频率。产生的开路电压(3–10 mV)足以直接进行耳蜗多电极植入物信号的模拟转换。

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