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Epi-illumination gradient light interference microscopy for imaging opaque structures
by
Robson, Drew N.
, Kong, Hyunjoon
, Min, Eunjung
, Kandel, Mikhail E.
, Sullivan, Kathryn Michele
, Popescu, Gabriel
, Gillette, Martha U.
, Li, Jennifer M.
, Best-Popescu, Catherine
, Hu, Chenfei
, Naseri Kouzehgarani, Ghazal
in
132/124
/ 631/1647/245/2226
/ 639/624/1107/510
/ 639/766/930/328/1650
/ 639/766/930/328/1651
/ Absorption
/ Animals
/ Bioengineering
/ Biological properties
/ Biological samples
/ Brain
/ Geometry
/ HeLa Cells
/ Hep G2 Cells
/ Humanities and Social Sciences
/ Humans
/ Illumination
/ Imaging
/ Imaging, Three-Dimensional
/ Interference
/ Interferometry
/ Inverse scattering
/ Larva
/ Light
/ Mice
/ Microscopy
/ Microscopy, Interference - instrumentation
/ Microscopy, Interference - methods
/ multidisciplinary
/ Neurons
/ Optical Imaging
/ Optical paths
/ Quartz
/ Rats
/ Science
/ Science (multidisciplinary)
/ Semiconductors
/ Silicon wafers
/ Substrates
/ Tendons
/ Tissues
/ Zebrafish
2019
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Epi-illumination gradient light interference microscopy for imaging opaque structures
by
Robson, Drew N.
, Kong, Hyunjoon
, Min, Eunjung
, Kandel, Mikhail E.
, Sullivan, Kathryn Michele
, Popescu, Gabriel
, Gillette, Martha U.
, Li, Jennifer M.
, Best-Popescu, Catherine
, Hu, Chenfei
, Naseri Kouzehgarani, Ghazal
in
132/124
/ 631/1647/245/2226
/ 639/624/1107/510
/ 639/766/930/328/1650
/ 639/766/930/328/1651
/ Absorption
/ Animals
/ Bioengineering
/ Biological properties
/ Biological samples
/ Brain
/ Geometry
/ HeLa Cells
/ Hep G2 Cells
/ Humanities and Social Sciences
/ Humans
/ Illumination
/ Imaging
/ Imaging, Three-Dimensional
/ Interference
/ Interferometry
/ Inverse scattering
/ Larva
/ Light
/ Mice
/ Microscopy
/ Microscopy, Interference - instrumentation
/ Microscopy, Interference - methods
/ multidisciplinary
/ Neurons
/ Optical Imaging
/ Optical paths
/ Quartz
/ Rats
/ Science
/ Science (multidisciplinary)
/ Semiconductors
/ Silicon wafers
/ Substrates
/ Tendons
/ Tissues
/ Zebrafish
2019
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Epi-illumination gradient light interference microscopy for imaging opaque structures
by
Robson, Drew N.
, Kong, Hyunjoon
, Min, Eunjung
, Kandel, Mikhail E.
, Sullivan, Kathryn Michele
, Popescu, Gabriel
, Gillette, Martha U.
, Li, Jennifer M.
, Best-Popescu, Catherine
, Hu, Chenfei
, Naseri Kouzehgarani, Ghazal
in
132/124
/ 631/1647/245/2226
/ 639/624/1107/510
/ 639/766/930/328/1650
/ 639/766/930/328/1651
/ Absorption
/ Animals
/ Bioengineering
/ Biological properties
/ Biological samples
/ Brain
/ Geometry
/ HeLa Cells
/ Hep G2 Cells
/ Humanities and Social Sciences
/ Humans
/ Illumination
/ Imaging
/ Imaging, Three-Dimensional
/ Interference
/ Interferometry
/ Inverse scattering
/ Larva
/ Light
/ Mice
/ Microscopy
/ Microscopy, Interference - instrumentation
/ Microscopy, Interference - methods
/ multidisciplinary
/ Neurons
/ Optical Imaging
/ Optical paths
/ Quartz
/ Rats
/ Science
/ Science (multidisciplinary)
/ Semiconductors
/ Silicon wafers
/ Substrates
/ Tendons
/ Tissues
/ Zebrafish
2019
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Epi-illumination gradient light interference microscopy for imaging opaque structures
Journal Article
Epi-illumination gradient light interference microscopy for imaging opaque structures
2019
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Overview
Multiple scattering and absorption limit the depth at which biological tissues can be imaged with light. In thick unlabeled specimens, multiple scattering randomizes the phase of the field and absorption attenuates light that travels long optical paths. These obstacles limit the performance of transmission imaging. To mitigate these challenges, we developed an epi-illumination gradient light interference microscope (epi-GLIM) as a label-free phase imaging modality applicable to bulk or opaque samples. Epi-GLIM enables studying turbid structures that are hundreds of microns thick and otherwise opaque to transmitted light. We demonstrate this approach with a variety of man-made and biological samples that are incompatible with imaging in a transmission geometry: semiconductors wafers, specimens on opaque and birefringent substrates, cells in microplates, and bulk tissues. We demonstrate that the epi-GLIM data can be used to solve the inverse scattering problem and reconstruct the tomography of single cells and model organisms.
Quantitative phase imaging techniques have been limited by multiple scattering of light or its use in transmission mode. Here, the authors show a gradient light interference microscopy method in a reflection geometry which allows for label-free phase imaging of bulk and opaque samples.
Publisher
Nature Publishing Group UK,Nature Publishing Group,Nature Portfolio
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