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High-resolution adaptive optical imaging within thick scattering media using closed-loop accumulation of single scattering.


ABSTRACT: Thick biological tissues give rise to not only the multiple scattering of incoming light waves, but also the aberrations of remaining signal waves. The challenge for existing optical microscopy methods to overcome both problems simultaneously has limited sub-micron spatial resolution imaging to shallow depths. Here we present an optical coherence imaging method that can identify aberrations of waves incident to and reflected from the samples separately, and eliminate such aberrations even in the presence of multiple light scattering. The proposed method records the time-gated complex-field maps of backscattered waves over various illumination channels, and performs a closed-loop optimization of signal waves for both forward and phase-conjugation processes. We demonstrated the enhancement of the Strehl ratio by more than 500 times, an order of magnitude or more improvement over conventional adaptive optics, and achieved a spatial resolution of 600?nm up to an imaging depth of seven scattering mean free paths.

SUBMITTER: Kang S 

PROVIDER: S-EPMC5735168 | biostudies-literature | 2017 Dec

REPOSITORIES: biostudies-literature

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High-resolution adaptive optical imaging within thick scattering media using closed-loop accumulation of single scattering.

Kang Sungsam S   Kang Pilsung P   Jeong Seungwon S   Kwon Yongwoo Y   Yang Taeseok D TD   Hong Jin Hee JH   Kim Moonseok M   Song Kyung-Deok KD   Park Jin Hyoung JH   Lee Jun Ho JH   Kim Myoung Joon MJ   Kim Ki Hean KH   Choi Wonshik W  

Nature communications 20171218 1


Thick biological tissues give rise to not only the multiple scattering of incoming light waves, but also the aberrations of remaining signal waves. The challenge for existing optical microscopy methods to overcome both problems simultaneously has limited sub-micron spatial resolution imaging to shallow depths. Here we present an optical coherence imaging method that can identify aberrations of waves incident to and reflected from the samples separately, and eliminate such aberrations even in the  ...[more]

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