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DYNAMIC CHARACTERIZATION OF BIOMIMETIC ARTIFICIAL HAIR CELLS

机译:动态人工毛细胞的动态表征

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The research presented in this paper investigates the relationship between fluid flow characteristics in an artificial cochlear environment and artificial hair cell sensor response. First, a lipid bilayer-based hair cell sensor is created to model the inner hair cells of the human cochlea. The artificial cochlear environment is then fabricated to recreate the pulsating fluid flow around the artificial inner hair cell stereocilia. Mechanical excitation creates sinusoidal fluid flows in the artificial cochlear environment at a range of frequencies determined by the response of the hair cell sensor in air. For excitation frequencies at and below 40 Hz, the response of the hair cell sensor is approximately equal to the control case having no bilayer. At these low frequencies, bilayer dynamics do not appear to lead to current generation. At frequencies at and above 70 Hz, and in the absence of an externally applied DC offset across the bilayer, the hair cell sensors featuring a bilayer generate up to double the RMS current. Therefore, for excitation frequencies at and above 70 Hz, bilayer dynamics play a significant role in hair cell sensor response. Further testing of the hair cell sensor shows that applying a DC offset across the bilayer increases the peak-to-peak sensor output by up to a factor of 80.
机译:本文提出的研究调查了人工耳蜗环境中的流体流动特性与人工毛细胞传感器响应之间的关系。首先,创建基于脂质双层的毛细胞传感器来模拟人耳蜗的内部毛细胞。然后制造人工耳蜗环境,以重新产生围绕人工内部毛细胞立体纤毛的脉动液流。机械激发在人工耳蜗环境中以一定频率范围内产生正弦流体流动,该频率范围由空气中毛细胞传感器的响应确定。对于等于或低于40 Hz的激发频率,毛细胞传感器的响应大约等于没有双层的情况。在这些低频下,双层动力学似乎不会导致产生电流。在高于或等于70 Hz的频率下,并且在双层中都没有外部施加的DC偏移时,具有双层的毛细胞传感器产生的RMS电流将增加一倍。因此,对于70 Hz或以上的激励频率,双层动力学在毛细胞传感器响应中起着重要作用。对毛细胞传感器的进一步测试表明,跨双层施加DC偏移量会使峰峰值传感器的输出增加多达80倍。

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