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Wideband micromachined microphones with radio frequency detection.

机译:具有射频检测功能的宽带微机械麦克风。

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摘要

There are many commercial, scientific, and military applications for miniature wideband acoustic sensors, including monitoring the condition or wear of equipment, collecting scientific data, and identifying and localizing military targets. The application of semiconductor micromachining techniques to sensor fabrication has the potential to transform acoustic sensing with small, reproducible, and inexpensive silicon-based microphones. However, such sensors usually suffer from limited bandwidth and from non-uniformities in their frequency response due to squeeze-film damping effects and narrow air gaps. Furthermore, they may be too fragile to be left unattended in a humid or dusty outdoor environment.; Silicon microphones that incorporate capacitive micromachined ultrasonic transducer membranes overcome some of the drawbacks of conventional microphones. These micromachined membranes are small and robust enough to be vacuum-sealed, and can withstand atmospheric pressure and submersion in water. In addition, the membrane mechanical response is flat from dc up to ultrasonic frequencies, resulting in a wideband sensor for accurate spectral analysis of acoustic signals. However, a sensitive detection scheme is necessary to detect the small changes in membrane displacement that result from using smaller, stiffer membranes than do conventional microphones. We propose a radio frequency detection technique, in which the capacitive membranes are incorporated into a transmission line. Variations in membrane capacitance due to impinging sound pressure are sensed through the phase variations of a carrier signal that propagates along the line.; This dissertation examines the design, fabrication, modeling, and experimental measurements of wideband micromachined microphones using sealed ultrasonic membranes and RF detection. Measurements of fabricated microphones demonstrate less than 0.5 dB variation in their output responses between 0.1 Hz to 100 kHz under electrostatic actuation of the membranes. The measured equivalent noise level of a fabricated 3 mm by 3 mm sensor is 53.8 dB(A) SPL in the audio band using a simple phase detection circuit operating at 2.8 GHz. Because the vacuum-sealed membrane structure has a low mechanical noise floor, sensitivity may be improved with higher carrier frequencies and more sophisticated detection circuitry.
机译:微型宽带声传感器在商业,科学和军事上都有许多应用,包括监视设备的状况或磨损,收集科学数据以及识别和定位军事目标。半导体微加工技术在传感器制造中的应用具有利用小型,可复制且廉价的硅基麦克风来改变声感测的潜力。然而,由于挤压膜的阻尼效应和狭窄的气隙,这种传感器通常遭受带宽有限和频率响应不均匀的困扰。此外,它们可能太脆弱,以至于在潮湿或多尘的室外环境中无人看管。包含电容性微加工超声换能器膜的硅麦克风克服了传统麦克风的某些缺点。这些微机械加工的膜小而坚固,可以真空密封,并且可以承受大气压和浸入水中。此外,从直流到超声频率,膜的机械响应都是平坦的,从而形成了宽带传感器,可对声信号进行准确的频谱分析。但是,需要灵敏的检测方案来检测由于使用比常规传声器更小,更硬的膜而导致的膜位移的微小变化。我们提出一种射频检测技术,其中将电容膜结合到传输线中。通过沿线传播的载波信号的相位变化,可以检测到由于撞击声压而引起的膜电容的变化。本文研究了使用密封超声膜和射频检测技术对宽带微机械麦克风的设计,制造,建模和实验测量。预制麦克风的测量结果表明,在静电激励膜片的情况下,其输出响应在0.1 Hz至100 kHz之间的变化小于0.5 dB。使用工作在2.8 GHz的简单相位检测电路,在音频频带中,所制造的3 mm x 3 mm传感器的等效噪声电平为53.8 dB(A)SPL。由于真空密封膜结构的机械本底噪声低,因此可以通过更高的载频和更复杂的检测电路来提高灵敏度。

著录项

  • 作者

    Hansen, Sean Thomas.;

  • 作者单位

    Stanford University.;

  • 授予单位 Stanford University.;
  • 学科 Engineering Electronics and Electrical.; Physics Acoustics.
  • 学位 Ph.D.
  • 年度 2004
  • 页码 179 p.
  • 总页数 179
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 无线电电子学、电信技术;声学;
  • 关键词

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