School of Physics and Optoelectronic Engineering, Xidian University, Xi'an, 710071, China.
Institute of Applied Physics, Karlsruhe Institute of Technology, 76128, Karlsruhe, Germany.
Sci Rep. 2017 Jun 26;7(1):4255. doi: 10.1038/s41598-017-04568-x.
Digital holographic microscopy (DHM) has its intrinsic ability to refocusing a sample by numerically propagating an object wave from its hologram plane to its image plane. In this paper opposite-view digital holographic microscopy (OV-DHM) is demonstrated for autofocusing, namely, digitally determining the location of the image plane, and refocusing the object wave without human intervention. In OV-DHM, a specimen is illuminated from two sides in a 4π-alike configuration, and two holograms are generated and recorded by a CCD camera along two orthogonal polarization orientations. The image plane of the sample is determined by finding the minimal variation between the two object waves, and consequently refocusing is performed by propagating the waves to the image plane. Furthermore, the field of view (FOV) of OV-DHM can be extended by combining the two object waves which have an angle in-between. The proposed technique also has the potential to reduce speckle noise and out-of-focus background.
数字全息显微镜(DHM)具有通过数值传播物波从其全息图平面到其像平面来重新聚焦样品的固有能力。在本文中,演示了相反视角数字全息显微镜(OV-DHM)用于自动对焦,即,无需人工干预即可数字确定像平面的位置并重新聚焦物波。在 OV-DHM 中,以 4π 类似的配置从两侧照明标本,并通过 CCD 相机沿两个正交偏振方向生成和记录两个全息图。通过找到两个物波之间的最小变化来确定样品的像平面,然后通过将波传播到像平面来进行重新聚焦。此外,可以通过组合具有夹角的两个物波来扩展 OV-DHM 的视场(FOV)。该技术还有可能减少散斑噪声和离焦背景。