Literature DB >> 29359102

13-fold resolution gain through turbid layer via translated unknown speckle illumination.

Kaikai Guo1, Zibang Zhang1,2, Shaowei Jiang1, Jun Liao1, Jingang Zhong2, Yonina C Eldar3, Guoan Zheng1.   

Abstract

Fluorescence imaging through a turbid layer holds great promise for various biophotonics applications. Conventional wavefront shaping techniques aim to create and scan a focus spot through the turbid layer. Finding the correct input wavefront without direct access to the target plane remains a critical challenge. In this paper, we explore a new strategy for imaging through turbid layer with a large field of view. In our setup, a fluorescence sample is sandwiched between two turbid layers. Instead of generating one focus spot via wavefront shaping, we use an unshaped beam to illuminate the turbid layer and generate an unknown speckle pattern at the target plane over a wide field of view. By tilting the input wavefront, we raster scan the unknown speckle pattern via the memory effect and capture the corresponding low-resolution fluorescence images through the turbid layer. Different from the wavefront-shaping-based single-spot scanning, the proposed approach employs many spots (i.e., speckles) in parallel for extending the field of view. Based on all captured images, we jointly recover the fluorescence object, the unknown optical transfer function of the turbid layer, the translated step size, and the unknown speckle pattern. Without direct access to the object plane or knowledge of the turbid layer, we demonstrate a 13-fold resolution gain through the turbid layer using the reported strategy. We also demonstrate the use of this technique to improve the resolution of a low numerical aperture objective lens allowing to obtain both large field of view and high resolution at the same time. The reported method provides insight for developing new fluorescence imaging platforms and may find applications in deep-tissue imaging.

Keywords:  (110.0113) Imaging through turbid media; (170.0110) Imaging systems; (180.0180) Microscopy

Year:  2017        PMID: 29359102      PMCID: PMC5772581          DOI: 10.1364/BOE.9.000260

Source DB:  PubMed          Journal:  Biomed Opt Express        ISSN: 2156-7085            Impact factor:   3.732


  21 in total

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5.  Adaptive system correction for robust Fourier ptychographic imaging.

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Journal:  Opt Express       Date:  2013-12-30       Impact factor: 3.894

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7.  Fluorescent microscopy beyond diffraction limits using speckle illumination and joint support recovery.

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8.  Deep-tissue focal fluorescence imaging with digitally time-reversed ultrasound-encoded light.

Authors:  Ying Min Wang; Benjamin Judkewitz; Charles A Dimarzio; Changhuei Yang
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9.  Time-reversed ultrasonically encoded optical focusing into scattering media.

Authors:  Xiao Xu; Honglin Liu; Lihong V Wang
Journal:  Nat Photonics       Date:  2011-03       Impact factor: 38.771

10.  Wide-field, high-resolution Fourier ptychographic microscopy.

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Journal:  Nat Photonics       Date:  2013-09-01       Impact factor: 38.771

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Review 6.  Metasurfaces-based imaging and applications: from miniaturized optical components to functional imaging platforms.

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