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Optic axis determination by fiber-based polarization-sensitive swept- source optical coherence tomography

机译:通过基于光纤的偏振敏感扫频光源光学相干断层扫描确定光轴

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We describe a fiber-based variable-incidence-angle (VIA) polarization-sensitive swept-source optical coherence tomography (PS-SS-OCT) system to determine the 3-D optical axis of birefringent biological tissues. Single-plane VIA-PS-OCT is also explored which requires measurement of the absolute fast-axis orientation.rnA state-of-the-art PS-SS-OCT system with some improvements both in hardware and software was used to determine the apparent optical birefringence of equine tendon for a number of different illumination directions. Polar and azimuthal angles of cut equine tendon were produced by VIA method and compared with the nominal values. A quarter waveplate (QWP) and equine tendon were used as test targets to validate the fast-axis measurements using the system.rnPolar and azimuthal angles of cut equine tendon broadly agreed with the expected values within about 8% of the nominal values. A theoretical and experimental analysis of the effect of the sample arm fiber on determination of optical axis orientation using a proposed definition based on the orientation of the eigenpolarization ellipse experimentally confirms that this algorithm only works correctly for special settings of the sample arm fiber. A proposed algorithm based on the angle between Stokes vectors on the Poincare sphere is confirmed to work for all settings of the sample arm fiber.rnA calibration procedure is proposed to remove the sign ambiguity of the measured orientation and was confirmed experimentally by using the QWP.
机译:我们描述了一种基于光纤的可变入射角(VIA)偏振敏感后掠源光学相干断层扫描(PS-SS-OCT)系统,以确定双折射生物组织的3-D光轴。还研究了单平面VIA-PS-OCT,它需要测量绝对的快速轴方向。rn使用了最先进的PS-SS-OCT系统,该系统在硬件和软件上都有一些改进,以确定外观。在许多不同的照明方向上,马腱的光学双折射。通过VIA方法产生马角肌腱的极角和方位角,并与标称值进行比较。使用四分之一波片(QWP)和马肌腱作为测试目标,以验证使用该系统进行的快速轴测量。切割马肌腱的极化角和方位角大致与标称值的大约8%内的期望值一致。使用基于本征极化椭圆取向的建议定义对样本臂光纤对光轴方向的影响进行理论和实验分析,实验证明该算法仅适用于样本臂光纤的特殊设置。证实了一种基于Poincare球上Stokes向量之间的夹角的算法可以适用于样本臂纤维的所有设置。提出了一种校准程序来消除测量方向的符号歧义,并通过QWP进行了实验验证。

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