Lengenfelder Benjamin, Hohmann Martin, Späth Moritz, Scherbaum Daniel, Weiß Manuel, Rupitsch Stefan J, Schmidt Michael, Zalevsky Zeev, Klämpfl Florian
Institute of Photonic Technologies, University Erlangen-Nürnberg (FAU), Konrad-Zuse-Straße 3/5, 91052 Erlangen, Germany.
Erlangen Graduate School in Advanced Optical Technologies (SAOT), Paul-Gordan-Straße 6, 91052 Erlangen, Germany.
Sensors (Basel). 2021 Mar 17;21(6):2109. doi: 10.3390/s21062109.
The need for tissue contact makes photoacoustic imaging not applicable for special medical applications like wound imaging, endoscopy, or laser surgery. An easy, stable, and contact-free sensing technique might thus help to broaden the applications of the medical imaging modality. In this work, it is demonstrated for the first time that remote photoacoustic sensing by speckle analysis can be performed in the MHz sampling range by tracking a single speckle using a four quadrant photo-detector. A single speckle, which is created by self-interference of surface back-reflection, is temporally analyzed using this photo-detector. Phantoms and skin samples are measured in transmission and reflection mode. The potential for miniaturization for endoscopic application is demonstrated by fiber bundle measurements. In addition, sensing parameters are discussed. Photoacoustic sensing in the MHz sampling range by single speckle analysis with the four quadrant detector is successfully demonstrated. Furthermore, the endoscopic applicability is proven, and the sensing parameters are convenient for photoacoustic sensing. It can be concluded that a single speckle contains all the relevant information for remote photoacoustic signal detection. Single speckle sensing is therefore an easy, robust, contact-free photoacoustic detection technique and holds the potential for economical, ultra-fast photoacoustic sensing. The new detection technique might thus help to broaden the field of photoacoustic imaging applications in the future.
由于需要组织接触,光声成像不适用于伤口成像、内窥镜检查或激光手术等特殊医学应用。因此,一种简单、稳定且非接触式的传感技术可能有助于拓宽这种医学成像方式的应用范围。在这项工作中,首次证明了通过使用四象限光电探测器跟踪单个散斑,可以在兆赫兹采样范围内进行基于散斑分析的远程光声传感。利用该光电探测器对由表面背反射的自干涉产生的单个散斑进行时间分析。在透射和反射模式下对仿体和皮肤样本进行测量。通过光纤束测量证明了其在内窥镜应用中的小型化潜力。此外,还讨论了传感参数。成功证明了使用四象限探测器通过单个散斑分析在兆赫兹采样范围内进行光声传感。此外,证明了其在内窥镜方面的适用性,并且传感参数便于进行光声传感。可以得出结论,单个散斑包含了远程光声信号检测的所有相关信息。因此,单个散斑传感是一种简单、稳健、非接触式的光声检测技术,具有实现经济、超快速光声传感的潜力。这种新的检测技术可能有助于在未来拓宽光声成像应用领域。