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Superresolution imaging system by color-coded tilted-beam illumination in digital in-line holographic microscopy

机译:数字在线全息显微镜中彩色编码倾斜光束照明的超级化成像系统

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Digital in-line holographic microscopy (DIHM) relates with the capability to achieve microscopic imaging working without lensless in the regime of holography. In essence, DIHM proposes a simple layout where a point source of coherent light illuminates the sample and the diffracted wavefront is recorded by a digital sensor. However, DIHM lacks high numerical aperture (NA) due to both geometrical distortion and the mandatory compromise between the illumination pinhole diameter, the illumination wavelength, and the need to obtain a reasonable light efficiency. One way to improve the resolution in DIHM, is by allowing superresolution imaging by angular multiplexing using tilted beam illumination. This illumination allows the on-axis diffraction of different spatial frequency content of the sample's spectrum, different in comparison to the case when on-axis illumination is used. And after recover this additional spectral content, a synthetic numerical aperture (SNA) expanding up the cutoff frequency of the system in comparison with the on-axis illumination case can be assembled in a digital post-processing stage. In this contribution, we present a method to achieve one-dimensional (1-D) superresolved imaging in DIHM by a SINGLE SHOT illumination, using color-coded tilted beams. The method has been named as L-SESRIM (Lensless Single-Exposure Super-Resolved Interferometric Microscopy). Although the technique was previously presented showing very preliminary results, in this contribution we expand the experimental characterization (USAF resolution test target) as well as derive the theoretical frame for SNA generation using different illumination wavelengths.
机译:数字在线全息显微镜(DIHM)涉及在全息内容的制度中实现无透镜的微观成像的能力。从本质上讲,DIHM提出了一种简单的布局,其中相干光的点源照射样品,并且衍射波前由数字传感器记录。然而,DIHM由于几何变形而缺乏高数值孔径(NA),并且照明针孔直径,照明波长和需要获得合理的光效率之间的强制性折衷。通过使用倾斜光束照明通过角度复用来提高DIHM分辨率的一种方法。该照明允许样品频谱的不同空间频率的轴衍射,与使用在轴上照明时的情况下不同。在恢复该额外的光谱含量之后,与在轴上照明壳体相比,可以在数字后处理阶段组装相比系统的截止频率的合成数值孔径(SNA)。在这一贡献中,我们介绍了一种方法来通过单个射击光束通过单次照射实现二维(1-D)超级叠加成像。该方法已被命名为L-SESRIM(无透镜单曝光超分辨干涉干涉显微镜)。虽然先前呈现了该技术的显示非常初步的结果,但在这一贡献中,我们扩展了使用不同照明波长的SNA生成的理论框架的实验表征(USAF分辨率测试目标)。

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