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具有近最大系统数值孔径的自由空间傅里叶叠层成像技术的实现。

Implementation of free-space Fourier Ptychography with near maximum system numerical aperture.

作者信息

Liang Mingshu, Yang Changhuei

出版信息

Opt Express. 2022 Jun 6;30(12):20321-20332. doi: 10.1364/OE.459833.

Abstract

Over the past decade, the research field of Fourier Ptychographic Microscopy (FPM) has seen numerous innovative developments that significantly expands its utility. Here, we report a high numerical aperture (NA) FPM implementation that incorporates some of these innovations to achieve a synthetic NA of 1.9 - close to the maximum possible synthetic NA of 2 for a free space FPM system. At this high synthetic NA, we experimentally found that it is vital to homogenize the illumination field in order to achieve the best resolution. Our FPM implementation has a full pitch resolution of 266 nm for 465 nm light, and depth of field of 3.6 µm. In comparison, a standard transmission microscope (incoherent) with close to maximum possible NA of 0.95 has a full pitch resolution of 318 nm for 465 nm light, and depth of field of 0.65 µm. While it is generally assumed that a free-space coherent imaging system and a free-space incoherent imaging system operating at their respective maximum NA should give comparable resolution, we experimentally find that an FPM system significantly outperforms its incoherent standard microscopy counterpart in resolution by a factor of 20%. Coupled with FPM's substantially longer effective depth of field (5.5 times longer), our work indicates that, in the near-maximum NA operation regime, the FPM has significant resolution and depth of field advantages over incoherent standard microscopy.

摘要

在过去十年中,傅里叶叠层显微镜(FPM)的研究领域取得了众多创新性进展,极大地扩展了其应用范围。在此,我们报告了一种高数值孔径(NA)的FPM实现方式,它融合了其中一些创新成果,以实现1.9的合成NA,接近自由空间FPM系统可能达到的最大合成NA 2。在如此高的合成NA下,我们通过实验发现,为了获得最佳分辨率,均匀化照明场至关重要。我们的FPM实现方式对于465 nm光的全间距分辨率为266 nm,景深为3.6 µm。相比之下,一个最大可能NA接近0.95的标准透射显微镜(非相干)对于465 nm光的全间距分辨率为318 nm,景深为0.65 µm。虽然通常认为在各自最大NA下运行的自由空间相干成像系统和自由空间非相干成像系统应具有可比的分辨率,但我们通过实验发现,FPM系统在分辨率上比其非相干标准显微镜对应物显著高出20%。再加上FPM长得多的有效景深(长5.5倍),我们的工作表明,在接近最大NA的运行模式下,FPM相对于非相干标准显微镜具有显著的分辨率和景深优势。

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