Wan Qianqian, Wang ChenChia, Xu Keshuai, Kang Jeeun, Wu Yixuan, Trivedi Sudhir B, Gehlbach Peter, Boctor Emad
Department of Biomedical Engineering, Johns Hopkins University, Baltimore, United States.
Brimrose Corporation of America, Baltimore, United States.
IEEE Int Ultrason Symp. 2020 Sep;2020. doi: 10.1109/ius46767.2020.9251499. Epub 2020 Nov 17.
The multi-bounce laser microphone utilizes optical methods to detect the displacement of a gold-covered thin film diaphragm caused by ultrasound signal pressure waves. This sensitive all-optical sensing technique provides new opportunities for advanced ultrasound imaging as it is expected to achieve a higher detection signal-to-noise ratio (SNR) in a broader spectrum, as compared to conventional ultrasonic transducers. The technique does not involve signal time-averaging and the real-time enhancement in detection SNR stems from the amplification of signal strength due to multiple bouncing off the diaphragm. The system was previously developed for detecting acoustic signatures generated by explosives and were limited to lower than 10 kHz in frequency. To demonstrate its feasibility for biomedical imaging applications, preliminary experiments were conducted to show high fidelity detection of ultrasound waves with frequencies ranging from 100 kHz to in excess of 1 MHz. Experimental results are also presented in this work demonstrating the improved detection sensitivity of the multi-bounce laser microphone in detecting ultrasound signals when compared with a commercial Fabry-Perot type optical hydrophone. Furthermore, we also applied the multi-bounce laser microphone to detect photoacoustic signatures emitted by India ink when a LED bar is used as the excitation source without signal averaging.
多反射激光麦克风利用光学方法来检测由超声信号压力波引起的镀金薄膜振膜的位移。这种灵敏的全光学传感技术为先进的超声成像提供了新机遇,因为与传统超声换能器相比,预计它能在更宽的频谱范围内实现更高的检测信噪比(SNR)。该技术不涉及信号时间平均,检测信噪比的实时增强源于信号在振膜上多次反射导致的信号强度放大。该系统先前是为检测爆炸物产生的声学特征而开发的,频率限制在10 kHz以下。为了证明其在生物医学成像应用中的可行性,进行了初步实验,以展示对频率范围从100 kHz到超过1 MHz的超声波的高保真检测。本文还给出了实验结果,证明与商用法布里 - 珀罗型光学水听器相比,多反射激光麦克风在检测超声信号时具有更高的检测灵敏度。此外,我们还应用多反射激光麦克风在不进行信号平均的情况下,检测以发光二极管阵列作为激发源时印度墨水发出的光声特征。