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抽样云纹法:一种用于感知二次相位失真及其校正以实现精确定量相显微镜的工具。

Sampling moiré method: a tool for sensing quadratic phase distortion and its correction for accurate quantitative phase microscopy.

出版信息

Opt Express. 2020 Mar 30;28(7):10062-10077. doi: 10.1364/OE.383461.

Abstract

The advantages of quantitative phase microscopy (QPM) such as label-free imaging with high spatial sensitivity, live cell compatibility and high-speed imaging makes it viable for various biological applications. The measurement accuracy of QPM strongly relies on the shape of the recorded interferograms, whether straight or curved fringes are recorded during the data acquisition. Moreover, for a single shot phase recovery high fringe density is required. The wavefront curvature for the high-density fringes over the entire field of view is difficult to be discerned with the naked eye. As a consequence, there is a quadratic phase aberration in the recovered phase images due to curvature mismatch. In the present work, we have implemented sampling moiré method for real-time sensing of the wavefront curvature mismatch between the object and the reference wavefronts and further for its correction. By zooming out the interferogram, moiré fringes are generated which helps to easily identify the curvature of the fringes. The wavefront curvature mismatch correction accuracy of the method is tested with the help of low temporal coherent light source such as a white light (temporal coherence ∼ 1.6 µm). The proposed scheme is successfully demonstrated to remove the quadratic phase aberration caused due to wavefront mismatch from an USAF resolution target and the biological tissue samples. The phase recovery accuracy of the current scheme is further compared with and found to better than the standard method called principle component analysis. The proposed method enables recording of the corrected wavefront interferogram without needing any additional optical components or modification and also does not need any post-processing correction algorithms. The proposed method of curvature compensation paves the path for a high-throughput and accurate quantitative phase imaging.

摘要

定量相显微镜(QPM)的优点在于无需标记即可进行高空间灵敏度的成像、适用于活细胞以及能够高速成像,使其适用于各种生物学应用。QPM 的测量精度强烈依赖于记录的干涉图的形状,即在数据采集过程中记录的是直线还是曲线条纹。此外,对于单次相位恢复,需要高密度的条纹。由于整个视场的高密度条纹的波前曲率难以用肉眼辨别,因此在恢复的相位图像中会出现二次相位像差。在本工作中,我们实现了用于实时感测物波前和参考波前之间的波前曲率失配以及进一步进行校正的采样云纹方法。通过缩小干涉图,会产生云纹条纹,这有助于轻松识别条纹的曲率。借助低时间相干光源(例如白光,时间相干性约为 1.6 µm)对该方法的波前曲率失配校正精度进行了测试。成功地演示了该方案可以从 USAF 分辨率目标和生物组织样本中去除由于波前失配引起的二次相位像差。还进一步将当前方案的相位恢复精度与标准方法(称为主成分分析)进行了比较,发现其精度更高。该方法能够记录校正后的波前干涉图,而不需要任何额外的光学元件或修改,也不需要任何后处理校正算法。该曲率补偿方法为高通量和精确的定量相成像铺平了道路。

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