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Coherent enhancement of optical remission in diffusive media
by
Bender, Nicholas
, Hsu, Chia Wei
, Yılmaz, Hasan
, Cao, Hui
, Goetschy, Arthur
, Palacios, Pablo Jara
, Yamilov, Alexey
in
Applied Physical Sciences
/ Brain
/ Diffusion
/ Earth crust
/ Humans
/ INAUGURAL ARTICLES
/ Infrared spectra
/ Infrared spectroscopy
/ Laser beams
/ Medical imaging
/ Near infrared radiation
/ Neuroimaging
/ Penetration depth
/ Physical Sciences
/ Remission
/ Signal strength
/ Signal to noise ratio
/ Wave front control
/ Wave fronts
2022
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Coherent enhancement of optical remission in diffusive media
by
Bender, Nicholas
, Hsu, Chia Wei
, Yılmaz, Hasan
, Cao, Hui
, Goetschy, Arthur
, Palacios, Pablo Jara
, Yamilov, Alexey
in
Applied Physical Sciences
/ Brain
/ Diffusion
/ Earth crust
/ Humans
/ INAUGURAL ARTICLES
/ Infrared spectra
/ Infrared spectroscopy
/ Laser beams
/ Medical imaging
/ Near infrared radiation
/ Neuroimaging
/ Penetration depth
/ Physical Sciences
/ Remission
/ Signal strength
/ Signal to noise ratio
/ Wave front control
/ Wave fronts
2022
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Do you wish to request the book?
Coherent enhancement of optical remission in diffusive media
by
Bender, Nicholas
, Hsu, Chia Wei
, Yılmaz, Hasan
, Cao, Hui
, Goetschy, Arthur
, Palacios, Pablo Jara
, Yamilov, Alexey
in
Applied Physical Sciences
/ Brain
/ Diffusion
/ Earth crust
/ Humans
/ INAUGURAL ARTICLES
/ Infrared spectra
/ Infrared spectroscopy
/ Laser beams
/ Medical imaging
/ Near infrared radiation
/ Neuroimaging
/ Penetration depth
/ Physical Sciences
/ Remission
/ Signal strength
/ Signal to noise ratio
/ Wave front control
/ Wave fronts
2022
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Coherent enhancement of optical remission in diffusive media
Journal Article
Coherent enhancement of optical remission in diffusive media
2022
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Overview
Remitted waves are used for sensing and imaging in diverse diffusive media from the Earth’s crust to the human brain. Separating the source and detector increases the penetration depth of light, but the signal strength decreases rapidly, leading to a poor signal-to-noise ratio. Here, we show, experimentally and numerically, that wavefront shaping a laser beam incident on a diffusive sample enables an enhancement of remission by an order of magnitude at depths of up to 10 transport mean free paths. We develop a theoretical model which predicts the maximal remission enhancement. Our analysis reveals a significant improvement in the sensitivity of remitted waves to local changes of absorption deep inside diffusive media. This work illustrates the potential of coherent wavefront control for noninvasive diffuse wave imaging applications, such as diffuse optical tomography and functional near-infrared spectroscopy.
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