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Fabrication and characterization of a multilayered optical tissue model with embedded scattering microspheres in polymeric materials

We report on a novel fabrication approach to build multilayered optical tissue phantoms that serve as independently validated test targets for axial resolution and contrast in scattering measurements by depth-resolving optical coherent tomography (OCT) with general applicability to a variety of thre...

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Detalles Bibliográficos
Autores principales: Chang, Robert C., Johnson, Peter, Stafford, Christopher M., Hwang, Jeeseong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Optical Society of America 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3370973/
https://www.ncbi.nlm.nih.gov/pubmed/22741079
http://dx.doi.org/10.1364/BOE.3.001326
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author Chang, Robert C.
Johnson, Peter
Stafford, Christopher M.
Hwang, Jeeseong
author_facet Chang, Robert C.
Johnson, Peter
Stafford, Christopher M.
Hwang, Jeeseong
author_sort Chang, Robert C.
collection PubMed
description We report on a novel fabrication approach to build multilayered optical tissue phantoms that serve as independently validated test targets for axial resolution and contrast in scattering measurements by depth-resolving optical coherent tomography (OCT) with general applicability to a variety of three-dimensional optical sectioning platforms. We implement a combinatorial bottom-up approach to prepare monolayers of light-scattering microspheres with interspersed layers of transparent polymer. A dense monolayer assembly of monodispersed microspheres is achieved via a combined methodology of polyelectrolyte multilayers (PEMs) for particle-substrate binding and convective particle flux for two-dimensional crystal array formation on a glass substrate. Modifications of key parameters in the layer-by-layer polyelectrolyte deposition approach are applied to optimize particle monolayer transfer from a glass substrate into an elastomer while preserving the relative axial positioning in the particle monolayer. Varying the dimensions of the scattering microspheres and the thickness of the intervening transparent polymer layers enables different spatial frequencies to be realized in the transverse dimension of the solid phantoms. Step-wise determination of the phantom dimensions is performed independently of the optical system under test to enable precise spatial calibration, independent validation, and quantitative dimensional measurements.
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spelling pubmed-33709732012-06-27 Fabrication and characterization of a multilayered optical tissue model with embedded scattering microspheres in polymeric materials Chang, Robert C. Johnson, Peter Stafford, Christopher M. Hwang, Jeeseong Biomed Opt Express Calibration, Validation and Phantom Studies We report on a novel fabrication approach to build multilayered optical tissue phantoms that serve as independently validated test targets for axial resolution and contrast in scattering measurements by depth-resolving optical coherent tomography (OCT) with general applicability to a variety of three-dimensional optical sectioning platforms. We implement a combinatorial bottom-up approach to prepare monolayers of light-scattering microspheres with interspersed layers of transparent polymer. A dense monolayer assembly of monodispersed microspheres is achieved via a combined methodology of polyelectrolyte multilayers (PEMs) for particle-substrate binding and convective particle flux for two-dimensional crystal array formation on a glass substrate. Modifications of key parameters in the layer-by-layer polyelectrolyte deposition approach are applied to optimize particle monolayer transfer from a glass substrate into an elastomer while preserving the relative axial positioning in the particle monolayer. Varying the dimensions of the scattering microspheres and the thickness of the intervening transparent polymer layers enables different spatial frequencies to be realized in the transverse dimension of the solid phantoms. Step-wise determination of the phantom dimensions is performed independently of the optical system under test to enable precise spatial calibration, independent validation, and quantitative dimensional measurements. Optical Society of America 2012-05-09 /pmc/articles/PMC3370973/ /pubmed/22741079 http://dx.doi.org/10.1364/BOE.3.001326 Text en ©2012 Optical Society of America http://creativecommons.org/licenses/by-nc-nd/3.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution-Noncommercial-No Derivative Works 3.0 Unported License, which permits download and redistribution, provided that the original work is properly cited. This license restricts the article from being modified or used commercially.
spellingShingle Calibration, Validation and Phantom Studies
Chang, Robert C.
Johnson, Peter
Stafford, Christopher M.
Hwang, Jeeseong
Fabrication and characterization of a multilayered optical tissue model with embedded scattering microspheres in polymeric materials
title Fabrication and characterization of a multilayered optical tissue model with embedded scattering microspheres in polymeric materials
title_full Fabrication and characterization of a multilayered optical tissue model with embedded scattering microspheres in polymeric materials
title_fullStr Fabrication and characterization of a multilayered optical tissue model with embedded scattering microspheres in polymeric materials
title_full_unstemmed Fabrication and characterization of a multilayered optical tissue model with embedded scattering microspheres in polymeric materials
title_short Fabrication and characterization of a multilayered optical tissue model with embedded scattering microspheres in polymeric materials
title_sort fabrication and characterization of a multilayered optical tissue model with embedded scattering microspheres in polymeric materials
topic Calibration, Validation and Phantom Studies
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3370973/
https://www.ncbi.nlm.nih.gov/pubmed/22741079
http://dx.doi.org/10.1364/BOE.3.001326
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