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Subwavelength resolution Fourier ptychography with hemispherical digital condensers

机译:具有半球形数字聚光器的亚波长分辨率傅里叶指纹图谱

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摘要

Fourier ptychography (FP) is a promising computational imaging technique that overcomes the physical space-bandwidth product (SBP) limit of a conventional microscope by applying angular diversity illuminations. However, to date, the effective imaging numerical aperture (NA) achievable with a commercial LED board is still limited to the range of 0.3-0.7 with a 4×/0.1NA objective due to the constraint of planar geometry with weak illumination brightness and attenuated signal-to-noise ratio (SNR). Thus the highest achievable half-pitch resolution is usually constrained between 500-1000 nm, which cannot fulfill some needs of high-resolution biomedical imaging applications. Although it is possible to improve the resolution by using a higher magnification objective with larger NA instead of enlarging the illumination NA, the SBP is suppressed to some extent, making the FP technique less appealing, since the reduction of field-of-view (FOV) is much larger than the improvement of resolution in this FP platform. Herein, in this paper, we initially present a subwavelength resolution Fourier ptychography (SRFP) platform with a hemispherical digital condenser to provide high-angle programmable plane-wave illuminations of 0.95NA, attaining a 4×/0.1NA objective with the final effective imaging performance of 1.05NA at a half-pitch resolution of 244 nm with a wavelength of 465 nm across a wide FOV of 14.60 mm~2, corresponding to an SBP of 245 megapixels. Our work provides an essential step of FP towards high-NA imaging applications without sacrificing the FOV, making it more practical and appealing.
机译:傅里叶指纹图谱(FP)是一种很有前途的计算成像技术,通过应用角度分集照明技术克服了常规显微镜的物理空间带宽乘积(SBP)限制。然而,迄今为止,由于平面几何形状的约束,照明亮度弱且衰减,商用LED板可获得的有效成像数值孔径(NA)仍限制在4×/ 0.1NA物镜的0.3-0.7范围内。信噪比(SNR)。因此,可达到的最高半间距分辨率通常限制在500-1000 nm之间,这无法满足高分辨率生物医学成像应用的某些需求。尽管可以通过使用具有较大NA的更高放大倍率的物镜而不是增大照明NA来提高分辨率,但由于视野(FOV)的减小,SBP在一定程度上受到了抑制,从而使FP技术的吸引力降低了)比此FP平台的分辨率提高要大得多。在本文中,我们首先介绍一个具有半球形数字聚光器的亚波长分辨率傅里叶指纹图谱(SRFP)平台,以提供0.95NA的高角度可编程平面波照明,最终获得有效成像的4×/ 0.1NA物镜1.05NA的性能在244 nm的半间距分辨率和465 nm的波长下跨14.60 mm〜2的宽视场,相当于245兆像素的SBP。我们的工作为FP向高NA成像应用提供了必不可少的步骤,而又不牺牲FOV,使其更加实用和吸引人。

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  • 来源
    《Conference on quantitative phase imaging》|2018年|105032S.1-105032S.8|共8页
  • 会议地点 San Francisco(US)
  • 作者单位

    Chinese Academy of Sciences Xi'an Institute of Optics and Precision Mechanics State Key Laboratory of Transient Optics and Photonics No.17 Xinxi Road Xi'an Shaanxi 710119 China University of Chinese Academy of Sciences No.19 Yuquan Road Beijing 100049 China;

    Xidian University No.2 South Taibai Road Xi'an Shaanxi 710071 China;

    Chinese Academy of Sciences Xi'an Institute of Optics and Precision Mechanics State Key Laboratory of Transient Optics and Photonics No.17 Xinxi Road Xi'an Shaanxi 710119 China;

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  • 关键词

    Computational imaging; Fourier ptychography; Phase retrieval; Quantitative phase imaging;

    机译:计算成像;傅里叶谱仪;相位检索;定量相成像;

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