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Deep imaging in highly scattering media by combining reflectionmatrix measurement with Bessel-like beam based optical coherencetomography

机译:通过结合反射在高散射介质中进行深度成像基于贝塞尔光束的光学相干测量矩阵断层扫描

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摘要

Multiple scattering in biomedical tissue limits the imaging depth within a range of 1–2 mm for conventional optical imaging techniques. To extend the imaging depth into the scattering medium, a computational method based on the reflection matrix measurement has been developed to retrieve the singly back-scattered signal light from the dominant detrimental multiple-scattered background. After applying singular value decomposition on the measured matrix in the post-process, the target image underneath the turbid media is clearly recovered. To increase the depth of focus of the incident light by elongating the focal spot along the optical axis, a digital grating pattern is specially designed and displayed on a phase-only spatial light modulator to generate the Bessel-like beam for lateral point scanning. According to the results, the depth of focus is increased up to 2.4 mm which is much longer than the value of ∼50 μm obtained by using the conventional focused Gaussian beam, leading to a deeper penetration depth due to the self-healing feature of the Bessel-like beam. In addition, generation of the Bessel-like beam simplifies the axial scanning process by getting rid of the need to mechanically translate the focal zone along the optical axis of anobjective with a high numerical aperture. By combining this method with anoptical coherence tomography system with a low coherence light source, adepth-resolved optical image is obtained underneath a highly turbid medium.
机译:生物医学组织中的多次散射将常规光学成像技术的成像深度限制在1-2mm的范围内。为了将成像深度扩展到散射介质中,已经开发了一种基于反射矩阵测量的计算方法,以从主要有害的多重散射背景中检索单个后向散射的信号光。在后处理中对测量的矩阵进行奇异值分解后,浑浊介质下方的目标图像将清晰地恢复。为了通过沿光轴拉长焦斑来增加入射光的聚焦深度,专门设计了数字光栅图案,并将其显示在仅相位的空间光调制器上,以生成类似贝塞尔的光束进行侧向点扫描。根据结果​​,聚焦深度增加到2.4µmm,远大于使用传统聚焦高斯光束获得的〜50µμm的值,由于激光束的自愈特性,其穿透深度更深。贝塞尔般的光束。另外,通过消除沿焦距光轴机械平移聚焦区的需求,类贝塞尔光束的产生简化了轴向扫描过程。高数值孔径的物镜。通过将此方法与具有低相干光源的光学相干层析成像系统在高度浑浊的介质下获得深度分辨的光学图像。

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