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All-optical optoacoustic microscopy based on probe beam deflection technique

机译:基于探测光束偏转技术的全光学光声显微镜

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摘要

Optoacoustic (OA) microscopy using an all-optical system based on the probe beam deflection technique (PBDT) for detection of laser-induced acoustic signals was investigated as an alternative to conventional piezoelectric transducers. PBDT provides a number of advantages for OA microscopy including (i) efficient coupling of laser excitation energy to the samples being imaged through the probing laser beam, (ii) undistorted coupling of acoustic waves to the detector without the need for separation of the optical and acoustic paths, (iii) high sensitivity and (iv) ultrawide bandwidth. Because of the unimpeded optical path in PBDT, diffraction-limited lateral resolution can be readily achieved. The sensitivity of the current PBDT sensor of 22 μV/Pa and its noise equivalent pressure (NEP) of 11.4 Pa are comparable with these parameters of the optical micro-ring resonator and commercial piezoelectric ultrasonic transducers. Benefits of the present prototype OA microscope were demonstrated by successfully resolving micron-size details in histological sections of cardiac muscle.
机译:研究了使用基于探测光束偏转技术(PBDT)的全光学系统对激光诱导的声信号进行检测的光声(OA)显微镜,以替代传统的压电换能器。 PBDT为OA显微镜提供了许多优势,其中包括(i)激光激发能量与通过探测激光束成像的样品的有效耦合;(ii)声波与检测器的无畸变耦合,而无需分离光学系统和光学系统。 (iii)高灵敏度和(iv)超宽带宽。由于PBDT中的光路不受阻碍,因此可以轻松实现衍射限制的横向分辨率。当前的PBDT传感器的灵敏度为22μV/ Pa,其噪声等效压力(NEP)为11.4Pa,与光学微环谐振器和商用压电超声换能器的这些参数相当。通过成功解决心肌组织切片中的微米级细节,证明了本原型OA显微镜的好处。

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