Resolution analysis in a lens-free on-chip digital holographic microscope
Jialin Zhang, Jiasong Sun, Qian Chen, Chao Zuo

TL;DR
This paper develops comprehensive transfer function models to analyze and optimize the resolution limits of lens-free on-chip digital holographic microscopes, considering multiple physical factors affecting imaging performance.
Contribution
It introduces five detailed transfer function models that systematically account for physical effects impacting resolution in LFOCDHM, aiding design optimization.
Findings
Models accurately predict resolution limits under various conditions.
Simulation and experimental results validate the theoretical models.
Guidelines for optimizing system design based on the models.
Abstract
Lens-free on-chip digital holographic microscopy (LFOCDHM) is a modern imaging technique whereby the sample is placed directly onto or very close to the digital sensor, and illuminated by a partially coherent source located far above it. The scattered object wave interferes with the reference (unscattered) wave at the plane where a digital sensor is situated, producing a digital hologram that can be processed in several ways to extract and numerically reconstruct an in-focus image using the back propagation algorithm. Without requiring any lenses and other intermediate optical components, the LFOCDHM has unique advantages of offering a large effective numerical aperture (NA) close to unity across the native wide field-of-view (FOV) of the imaging sensor in a cost-effective and compact design. However, unlike conventional coherent diffraction limited imaging systems, where the limiting…
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Taxonomy
TopicsDigital Holography and Microscopy · Image Processing Techniques and Applications · Advanced Optical Imaging Technologies
