放大倍数
数字全息显微术
全息术
光学
显微镜
显微镜
计算机科学
数字全息术
镜头(地质)
物理
作者
Xin Fan,John J. Healy,Kevin O’Dwyer,Julianna Winnik,Bryan M. Hennelly
出处
期刊:Photonics
[Multidisciplinary Digital Publishing Institute]
日期:2021-07-07
卷期号:8 (7): 264-264
被引量:7
标识
DOI:10.3390/photonics8070264
摘要
Traditional microscopy provides only for a small set of magnifications using a finite set of microscope objectives. Here, a novel architecture is proposed for quantitative phase microscopy that requires only a simple adaptation of the traditional off-axis digital holographic microscope. The architecture has the key advantage of continuously variable magnification, resolution, and Field-of-View, by simply moving the sample. The method is based on combining the principles of traditional off-axis digital holographic microscopy and Gabor microscopy, which uses a diverging spherical wavefield for magnification. We present a proof-of-concept implementation and ray-tracing is used to model the magnification, Numerical Aperture, and Field-of-View as a function of sample position. Experimental results are presented using a micro-lens array and shortcomings of the method are highlighted for future work; in particular, the problem of aberration is highlighted, which results from imaging far from the focal plane of the infinity corrected microscope objective.
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