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Micro/Nano-scale Strain Distribution Measurement from Sampling Moiré Fringes
Published on: May 23, 2017
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Sampling moiré method: a tool for sensing quadratic phase distortion and its correction for accurate quantitative
Optics Express
|April 1, 2020
Summary
Quantitative phase microscopy (QPM) accuracy is improved using a novel sampling moiré method to correct wavefront curvature mismatch. This technique enhances phase recovery without extra optics or post-processing, enabling high-throughput biological imaging.
Area of Science:
- Optical microscopy
- Biomedical imaging
- Phase contrast imaging
Background:
- Quantitative phase microscopy (QPM) offers label-free, high-sensitivity imaging for live cells.
- Accurate QPM phase recovery depends on interferogram fringe shape and density.
- Wavefront curvature mismatch causes quadratic phase aberrations in QPM.
Purpose of the Study:
- To implement and validate a sampling moiré method for real-time sensing and correction of wavefront curvature mismatch in QPM.
- To improve phase recovery accuracy in QPM by addressing quadratic phase aberrations.
Main Methods:
- Implemented a sampling moiré method by zooming out interferograms to generate moiré fringes for curvature identification.
- Tested the method's accuracy using white light (temporal coherence ~1.6 µm).
- Compared phase recovery accuracy against the principle component analysis method.
Main Results:
- Successfully removed quadratic phase aberration from USAF resolution targets and biological tissue samples.
- Demonstrated accurate wavefront curvature mismatch correction.
- Achieved phase recovery accuracy superior to the standard principle component analysis method.
Conclusions:
- The sampling moiré method effectively corrects wavefront curvature mismatch in QPM in real-time.
- The proposed technique requires no additional optical components or post-processing.
- This method facilitates high-throughput and accurate quantitative phase imaging.

