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Dispersion control with a Fourier-domain optical delay line in a fiber-optic imaging interferometer

机译:光纤成像干涉仪中傅里叶域光学延迟线的色散控制

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Recently, Fourier-domain (FD) optical delay lines (ODLs) were introduced for high-speed scanning and dispersion compensation in imaging interferometry. We investigate the effect of first- and second-order dispersion on the photocurrent signal associated with an optical coherence imaging system implemented with a single-mode fiber, a superluminescent diode centered at 950 nm +/- 35 nm, a FD ODL, a mirror, and a layered LiTAO(3) that has suitable dispersion characteristics to model a skin specimen. We present a practical and useful method to minimize the effect of dispersion through the interferometer and the specimen combined, as well as to quantify the results using two general metrics for resolution. Theoretical and associated experimental results show that, under the optimum solution, the maximum broadening of the point-spread function through a 1-mm-deep specimen is limited to 57% of its original rms width value (i.e., 8.1 mu m optimal, 12.7 mu m at maximum broadening) compared with approximately 110% when compensation is performed without the specimen taken into account. (c) 2005 Optical Society of America.
机译:最近,引入了傅里叶域(FD)光学延迟线(ODL),用于成像干涉仪中的高速扫描和色散补偿。我们研究了一阶和二阶色散对光电流信号的影响,该光电流信号与使用单模光纤,以950 nm +/- 35 nm为中心的超发光二极管,FD ODL,反射镜实现的光学相干成像系统相关,以及具有合适的分散特性以对皮肤样本进行建模的层状LiTAO(3)。我们提出了一种实用而有用的方法,以最大程度地减小通过干涉仪和组合样品产生的色散影响,并使用两个通用的分辨率对结果进行量化。理论和相关的实验结果表明,在最佳解的情况下,通过1mm深样品的点扩展函数的最大展宽被限制为其原始rms宽度值的57%(即,最佳8.1微米,12.7) (最大展宽时为30毫米),而在不考虑样品的情况下进行补偿时则约为110%。 (c)2005年美国眼镜学会。

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