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Highly temporal stable, wavelength-independent, and scalable field-of-view common-path quantitative phase microscope

Significance: High temporal stability, wavelength independency, and scalable field of view (FOV) are the primary requirements of a quantitative phase microscopy (QPM) system. The high temporal stability of the system provides accurate measurement of minute membrane fluctuations of the biological cel...

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Autores principales: Ahmad, Azeem, Dubey, Vishesh, Butola, Ankit, Ahluwalia, Balpreet Singh, Mehta, Dalip Singh
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Society of Photo-Optical Instrumentation Engineers 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7657586/
https://www.ncbi.nlm.nih.gov/pubmed/33179458
http://dx.doi.org/10.1117/1.JBO.25.11.116501
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author Ahmad, Azeem
Dubey, Vishesh
Butola, Ankit
Ahluwalia, Balpreet Singh
Mehta, Dalip Singh
author_facet Ahmad, Azeem
Dubey, Vishesh
Butola, Ankit
Ahluwalia, Balpreet Singh
Mehta, Dalip Singh
author_sort Ahmad, Azeem
collection PubMed
description Significance: High temporal stability, wavelength independency, and scalable field of view (FOV) are the primary requirements of a quantitative phase microscopy (QPM) system. The high temporal stability of the system provides accurate measurement of minute membrane fluctuations of the biological cells that can be an indicator of disease diagnosis. Aim: The main aim of this work is to develop a high temporal stable technique that can accurately quantify the cell’s dynamics such as membrane fluctuations of human erythrocytes. Further, the technique should be capable of acquiring scalable FOV and resolution at multiple wavelengths to make it viable for various biological applications. Approach: We developed a single-element nearly common path, wavelength-independent, and scalable resolution/FOV QPM system to obtain temporally stable holograms/interferograms of the biological specimens. Results: With the proposed system, the temporal stability is obtained [Formula: see text] without using any vibration isolation table. The capability of the proposed system is first demonstrated on USAF resolution chart and polystyrene spheres ([Formula: see text] diameter). Further, the system is implemented for single shot, wavelength-independent quantitative phase imaging of human red blood cells (RBCs) with scalable resolution using color CCD camera. The membrane fluctuation of healthy human RBCs is also measured and was found to be around 47 nm. Conclusions: Contrary to its optical counterparts, the present system offers an energy efficient, cost effective, and simple way of generating object and reference beam for the development of common-path QPM. The present system provides the flexibility to the user to acquire multi-wavelength quantitative phase images at scalable FOV and resolution.
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spelling pubmed-76575862020-11-13 Highly temporal stable, wavelength-independent, and scalable field-of-view common-path quantitative phase microscope Ahmad, Azeem Dubey, Vishesh Butola, Ankit Ahluwalia, Balpreet Singh Mehta, Dalip Singh J Biomed Opt Microscopy Significance: High temporal stability, wavelength independency, and scalable field of view (FOV) are the primary requirements of a quantitative phase microscopy (QPM) system. The high temporal stability of the system provides accurate measurement of minute membrane fluctuations of the biological cells that can be an indicator of disease diagnosis. Aim: The main aim of this work is to develop a high temporal stable technique that can accurately quantify the cell’s dynamics such as membrane fluctuations of human erythrocytes. Further, the technique should be capable of acquiring scalable FOV and resolution at multiple wavelengths to make it viable for various biological applications. Approach: We developed a single-element nearly common path, wavelength-independent, and scalable resolution/FOV QPM system to obtain temporally stable holograms/interferograms of the biological specimens. Results: With the proposed system, the temporal stability is obtained [Formula: see text] without using any vibration isolation table. The capability of the proposed system is first demonstrated on USAF resolution chart and polystyrene spheres ([Formula: see text] diameter). Further, the system is implemented for single shot, wavelength-independent quantitative phase imaging of human red blood cells (RBCs) with scalable resolution using color CCD camera. The membrane fluctuation of healthy human RBCs is also measured and was found to be around 47 nm. Conclusions: Contrary to its optical counterparts, the present system offers an energy efficient, cost effective, and simple way of generating object and reference beam for the development of common-path QPM. The present system provides the flexibility to the user to acquire multi-wavelength quantitative phase images at scalable FOV and resolution. Society of Photo-Optical Instrumentation Engineers 2020-11-11 2020-11 /pmc/articles/PMC7657586/ /pubmed/33179458 http://dx.doi.org/10.1117/1.JBO.25.11.116501 Text en © 2020 The Authors https://creativecommons.org/licenses/by/4.0/ Published by SPIE under a Creative Commons Attribution 4.0 Unported License. Distribution or reproduction of this work in whole or in part requires full attribution of the original publication, including its DOI.
spellingShingle Microscopy
Ahmad, Azeem
Dubey, Vishesh
Butola, Ankit
Ahluwalia, Balpreet Singh
Mehta, Dalip Singh
Highly temporal stable, wavelength-independent, and scalable field-of-view common-path quantitative phase microscope
title Highly temporal stable, wavelength-independent, and scalable field-of-view common-path quantitative phase microscope
title_full Highly temporal stable, wavelength-independent, and scalable field-of-view common-path quantitative phase microscope
title_fullStr Highly temporal stable, wavelength-independent, and scalable field-of-view common-path quantitative phase microscope
title_full_unstemmed Highly temporal stable, wavelength-independent, and scalable field-of-view common-path quantitative phase microscope
title_short Highly temporal stable, wavelength-independent, and scalable field-of-view common-path quantitative phase microscope
title_sort highly temporal stable, wavelength-independent, and scalable field-of-view common-path quantitative phase microscope
topic Microscopy
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7657586/
https://www.ncbi.nlm.nih.gov/pubmed/33179458
http://dx.doi.org/10.1117/1.JBO.25.11.116501
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