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Homodyne Detection of Ultrasound Through Turbid Media Using an Adaptive Interferometer

机译:利用自适应干涉仪通过混浊介质超声检测超声波

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We demonstrate laser-based adaptive ultrasonic detection through turbid media using a photorefractive quantum well as a receiver, and a fsec-laser as a light source. An adaptive Mach-Zehnder interferometer is based upon two-wave mixing for homodyne detection. When the fsec-laser propagates through the turbid media, the transmitted light shows the first arrived unscattered signals and the delayed scattered background. Two laser pulses from a signal arm and a reference arm in the interferometer are combined at the adaptive holographic quantum well film. By choice of center wavelength, the two pulses are phase-locked for compensation of wavefront phase distortions. In addition, the scattered background is eliminated by adjusting the optical delay of the reference arm. Using this system, ultrasonic homodyne signals through 11 mean-free paths (mfp) turbid media are successfully detected.
机译:我们通过使用光折叠量子作为接收器,通过浊度介质展示基于激光的自适应超声波检测,以及作为光源的FSEC激光器。自适应Mach-Zehnder干涉仪基于双波混合进行杂质检测。当FSEC激光通过混浊介质传播时,透射光示出了第一到达的未准备信号和延迟散射的背景。来自信号臂的两个激光脉冲和干涉仪中的参考臂在自适应全息量子孔膜上组合。通过选择中心波长,两种脉冲锁定用于对波前相失真的补偿。另外,通过调整参考臂的光学延迟来消除散射背景。使用该系统,通过11个平均路径(MFP)混浊介质,超声波杂差信号被成功检测到。

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