STAR-FDTD : Space-time modulated acousto-optic guidestar in disordered media

Fuente: arXiv
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Main Authors: Raju, Michael, Jayet, Baptiste, Andersson-Engels, Stefan
Format: Preprint
Published: 2024
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author Raju, Michael
Jayet, Baptiste
Andersson-Engels, Stefan
author_facet Raju, Michael
Jayet, Baptiste
Andersson-Engels, Stefan
contents We developed a 2D Finite-Difference Time-Domain (FDTD) method for modeling a space-time modulated guidestar targeting wavefront shaping applications in disordered media. Space-time modulation in general (a particular example being the acousto-optic effect) is used here as a guidestar for the transverse confinement of light around the tagged region surrounded by disorder. Together with the guidestar, the iterative optical phase conjugation (IOPC) method is used to overcome the diffusion of light due to multiple scattering. A phase sensitive lock-in detection technique is utilized to estimate the steady-state amplitude and phase of the modulated wavefronts emerging from the guidestar region continuously operating in the Raman-Nath regime. As the IOPC scheme naturally converges to the maximally transmitting eigenchannel profile, one could use the position of the guidestar within the disorder to channelize the maximal transmission through the tagged region. The associated code developed in MATLAB is provided as an open source (MIT license) package. The code package is referred by the acronym STAR-FDTD where STAR stands for Space-Time modulated Acousto-optic guidestaR.
format Preprint
id arxiv_https___arxiv_org_abs_2404_09273
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle STAR-FDTD : Space-time modulated acousto-optic guidestar in disordered media
Raju, Michael
Jayet, Baptiste
Andersson-Engels, Stefan
Optics
We developed a 2D Finite-Difference Time-Domain (FDTD) method for modeling a space-time modulated guidestar targeting wavefront shaping applications in disordered media. Space-time modulation in general (a particular example being the acousto-optic effect) is used here as a guidestar for the transverse confinement of light around the tagged region surrounded by disorder. Together with the guidestar, the iterative optical phase conjugation (IOPC) method is used to overcome the diffusion of light due to multiple scattering. A phase sensitive lock-in detection technique is utilized to estimate the steady-state amplitude and phase of the modulated wavefronts emerging from the guidestar region continuously operating in the Raman-Nath regime. As the IOPC scheme naturally converges to the maximally transmitting eigenchannel profile, one could use the position of the guidestar within the disorder to channelize the maximal transmission through the tagged region. The associated code developed in MATLAB is provided as an open source (MIT license) package. The code package is referred by the acronym STAR-FDTD where STAR stands for Space-Time modulated Acousto-optic guidestaR.
title STAR-FDTD : Space-time modulated acousto-optic guidestar in disordered media
topic Optics
url https://arxiv.org/abs/2404.09273