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A microelectromechanical system artificial basilar membrane based on a piezoelectric cantilever array and its characterization using an animal model

机译:一种基于压电悬臂阵列的微机电系统人工基础膜及其使用动物模型的表征

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We proposed a piezoelectric artificial basilar membrane (ABM) composed of a microelectromechanical system cantilever array. The ABM mimics the tonotopy of the cochlea: frequency selectivity and mechanoelectric transduction. The fabricated ABM exhibits a clear tonotopy in an audible frequency range (2.92–12.6?kHz). Also, an animal model was used to verify the characteristics of the ABM as a front end for potential cochlear implant applications. For this, a signal processor was used to convert the piezoelectric output from the ABM to an electrical stimulus for auditory neurons. The electrical stimulus for auditory neurons was delivered through an implanted intra-cochlear electrode array. The amplitude of the electrical stimulus was modulated in the range of 0.15 to 3.5?V with incoming sound pressure levels (SPL) of 70.1 to 94.8?dB SPL. The electrical stimulus was used to elicit an electrically evoked auditory brainstem response (EABR) from deafened guinea pigs. EABRs were successfully measured and their magnitude increased upon application of acoustic stimuli from 75 to 95?dB SPL. The frequency selectivity of the ABM was estimated by measuring the magnitude of EABRs while applying sound pressure at the resonance and off-resonance frequencies of the corresponding cantilever of the selected channel. In this study, we demonstrated a novel piezoelectric ABM and verified its characteristics by measuring EABRs.
机译:我们提出了一种由微机电系统悬臂阵列组成的压电人工基础膜(ABM)。 ABM模仿耳蜗的可调节:频率选择性和机械电转换。制造的ABM在可听频率范围内显示出清晰的调节(2.92-12.6?KHz)。而且,动物模型用于验证ABM作为潜在耳蜗植入应用的前端的特性。为此,使用信号处理器将从ABM的压电输出转换为听觉神经元的电刺激。通过植入的耳蜗内电极阵列递送听觉神经元的电刺激。电刺激的幅度在0.15至3.5Ωv的范围内,进入声压水平(SPL)为70.1至94.8≤dbspl。电气刺激用于引出来自聋豚鼠的电诱发听觉脑干反应(EABR)。 EABRS成功测量,在75至95〜95〜95的声学刺激时,它们的幅度增加了。通过测量EABRS的大小,同时在所选通道的相应悬臂的相应悬臂的谐振和偏离频率处施加声压的同时估计ABM的频率选择性。在这项研究中,我们展示了一种新型压电ABM,并通过测量EABRS来验证其特征。

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