Single-Shot Dual-Wavelength Lens-Free Digital Holography Enabled by Polarization Multiplexing

Lens-free digital holography (LFDH) provides a compact and large field of view platform for quantitative phase imaging. However, inline configurations inherently suffer from twin-image artifacts and typically require multi-height acquisition, wavelength switching, or temporal phase-shifting schemes for reliable phase retrieval. In this work, we propose a single-shot polarization-multiplexed dual-wavelength inline lens-free holography framework for isotropic or weakly polarization-sensitive samples. Two coherent light sources with orthogonal linear polarization states are coaxially combined to simultaneously illuminate the sample, while a polarization-resolved image sensor encodes wavelength information at the pixel level without spectral filtering. Through polarization demultiplexing and subpixel spatial registration, two wavelength-resolved holograms are reconstructed from a single exposure. An iterative dual-wavelength phase retrieval algorithm incorporating cross-wavelength constraints is then employed to suppress twin-image artifacts and recover the object phase without wavelength switching, mechanical scanning, or temporal phase modulation. The proposed approach enables single-frame phase reconstruction while preserving the structural simplicity and wide-field imaging capability of inline LFDH. Experimental results demonstrate effective twin-image suppression and improved phase retrieval performance, highlighting the potential of the method for wide-field and dynamic-compatible phase imaging of weakly polarization-sensitive specimens.

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Publication Details

Journal
Optics & Laser Technology
Published
2026-09-28
DOI
https://doi.org/10.1016/j.optlastec.2026.116359
Primary Topic
Digital Holography and Microscopy
Type
article
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Single-Shot Dual-Wavelength Lens-Free Digital Holography Enabled by Polarization Multiplexing

Chung-Hsuan Huang, Han-Yen Tu, Chau-Jern Cheng
Optics & Laser Technology
Digital Holography and Microscopy
article

Single-Shot Dual-Wavelength Lens-Free Digital Holography Enabled by Polarization Multiplexing

Chung-Hsuan Huang, Han-Yen Tu, Chau-Jern Cheng
article en

Abstract

Lens-free digital holography (LFDH) provides a compact and large field of view platform for quantitative phase imaging. However, inline configurations inherently suffer from twin-image artifacts and typically require multi-height acquisition, wavelength switching, or temporal phase-shifting schemes for reliable phase retrieval. In this work, we propose a single-shot polarization-multiplexed dual-wavelength inline lens-free holography framework for isotropic or weakly polarization-sensitive samples. Two coherent light sources with orthogonal linear polarization states are coaxially combined to simultaneously illuminate the sample, while a polarization-resolved image sensor encodes wavelength information at the pixel level without spectral filtering. Through polarization demultiplexing and subpixel spatial registration, two wavelength-resolved holograms are reconstructed from a single exposure. An iterative dual-wavelength phase retrieval algorithm incorporating cross-wavelength constraints is then employed to suppress twin-image artifacts and recover the object phase without wavelength switching, mechanical scanning, or temporal phase modulation. The proposed approach enables single-frame phase reconstruction while preserving the structural simplicity and wide-field imaging capability of inline LFDH. Experimental results demonstrate effective twin-image suppression and improved phase retrieval performance, highlighting the potential of the method for wide-field and dynamic-compatible phase imaging of weakly polarization-sensitive specimens.

Optics & Laser TechnologyVol. 204
National Taiwan Normal University (TW), Chinese Culture University (TW)
Openalex Percentile: Top 14%
Digital Holography and Microscopy
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Single-Shot Dual-Wavelength Lens-Free Digital Holography Enabled by Polarization Multiplexing — Chung-Hsuan Huang, Han-Yen Tu, et al. · Optics & Laser Technology (2026) | TGRS Research Map | TGRS