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Probe alignment and design issues of microelectromechanical system based optical coherence tomography endoscopic imaging

机译:基于微机电系统光学相干断层扫描内窥镜成像的探头对准和设计问题

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Endoscopic optical coherence tomography (OCT) imaging has been demonstrated using microelectromechanical system (MEMS) technology by several research groups. The focus of this work is to study how the OCT imaging performance is affected by the radius of curvature of MEMS mirrors as well as the optical alignment accuracy inside small imaging probes. The goal of this study is to provide guidance for assembly tolerance and design optimization of OCT endoscopic probes. Gaussian beam propagation is used for theoretical analysis which is confirmed by optical simulation and verified experimentally with a time-domain OCT system as well. It has been found that the OCT imaging is very sensitive to the distance from the fiber end to the gradient-index (GRIN) lens, which needs to be controlled within 0.1 mm to achieve working distance (WD) longer than 3.5 mm and lateral resolution around 25 μm. The impact on image quality of the MEMS mirror is negligible if the radius of curvature of the mirror surface is greater than 200 mm. In addition, we studied the astigmatism introduced by cylindrical plastic tubing; the maximum astigmatism ratio is 1.1 when the WD is around 2.5 mm.
机译:多个研究小组已使用微机电系统(MEMS)技术证明了内窥镜光学相干断层扫描(OCT)成像。这项工作的重点是研究OCT成像性能如何受MEMS反射镜的曲率半径以及小型成像探针内部的光学对准精度的影响。这项研究的目的是为OCT内窥镜探头的装配公差和设计优化提供指导。高斯光束传播用于理论分析,该理论分析已通过光学仿真得到确认,并通过时域OCT系统进行了实验验证。已经发现,OCT成像对从光纤末端到梯度折射率(GRIN)透镜的距离非常敏感,需要将其控制在0.1 mm以内,以​​实现大于3.5 mm的工作距离(WD)和横向分辨率约25微米如果镜面的曲率半径大于200 mm,则对MEMS镜的图像质量的影响可以忽略不计。另外,我们研究了圆柱形塑料管引入的散光。当WD约为2.5 mm时,最大散光率为1.1。

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