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High-throughput nitrogen-vacancy center imaging for nanodiamond photophysical characterization and pH nanosensing

The fluorescent nitrogen-vacancy (NV) defect in diamond has remarkable photophysical properties, including high photostability which allows stable fluorescence emission for hours; as a result, there has been much interest in using nanodiamonds (NDs) for applications in quantum optics and biological...

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Autores principales: Sow, Maabur, Steuer, Horst, Adekanye, Sanmi, Ginés, Laia, Mandal, Soumen, Gilboa, Barak, Williams, Oliver A., Smith, Jason M., Kapanidis, Achillefs N.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8329943/
https://www.ncbi.nlm.nih.gov/pubmed/33103692
http://dx.doi.org/10.1039/d0nr05931e
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author Sow, Maabur
Steuer, Horst
Adekanye, Sanmi
Ginés, Laia
Mandal, Soumen
Gilboa, Barak
Williams, Oliver A.
Smith, Jason M.
Kapanidis, Achillefs N.
author_facet Sow, Maabur
Steuer, Horst
Adekanye, Sanmi
Ginés, Laia
Mandal, Soumen
Gilboa, Barak
Williams, Oliver A.
Smith, Jason M.
Kapanidis, Achillefs N.
author_sort Sow, Maabur
collection PubMed
description The fluorescent nitrogen-vacancy (NV) defect in diamond has remarkable photophysical properties, including high photostability which allows stable fluorescence emission for hours; as a result, there has been much interest in using nanodiamonds (NDs) for applications in quantum optics and biological imaging. Such applications have been limited by the heterogeneity of NDs and our limited understanding of NV photophysics in NDs, which is partially due to the lack of sensitive and high-throughput methods for photophysical analysis of NDs. Here, we report a systematic analysis of NDs using two-color wide-field epifluorescence imaging coupled to high-throughput single-particle detection of single NVs in NDs with sizes down to 5–10 nm. By using fluorescence intensity ratios, we observe directly the charge conversion of single NV center (NV(−) or NV(0)) and measure the lifetimes of different NV charge states in NDs. We also show that we can use changes in pH to control the main NV charge states in a direct and reversible fashion, a discovery that paves the way for performing pH nanosensing with a non-photobleachable probe.
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spelling pubmed-83299432021-08-09 High-throughput nitrogen-vacancy center imaging for nanodiamond photophysical characterization and pH nanosensing Sow, Maabur Steuer, Horst Adekanye, Sanmi Ginés, Laia Mandal, Soumen Gilboa, Barak Williams, Oliver A. Smith, Jason M. Kapanidis, Achillefs N. Nanoscale Chemistry The fluorescent nitrogen-vacancy (NV) defect in diamond has remarkable photophysical properties, including high photostability which allows stable fluorescence emission for hours; as a result, there has been much interest in using nanodiamonds (NDs) for applications in quantum optics and biological imaging. Such applications have been limited by the heterogeneity of NDs and our limited understanding of NV photophysics in NDs, which is partially due to the lack of sensitive and high-throughput methods for photophysical analysis of NDs. Here, we report a systematic analysis of NDs using two-color wide-field epifluorescence imaging coupled to high-throughput single-particle detection of single NVs in NDs with sizes down to 5–10 nm. By using fluorescence intensity ratios, we observe directly the charge conversion of single NV center (NV(−) or NV(0)) and measure the lifetimes of different NV charge states in NDs. We also show that we can use changes in pH to control the main NV charge states in a direct and reversible fashion, a discovery that paves the way for performing pH nanosensing with a non-photobleachable probe. The Royal Society of Chemistry 2020-10-26 /pmc/articles/PMC8329943/ /pubmed/33103692 http://dx.doi.org/10.1039/d0nr05931e Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Sow, Maabur
Steuer, Horst
Adekanye, Sanmi
Ginés, Laia
Mandal, Soumen
Gilboa, Barak
Williams, Oliver A.
Smith, Jason M.
Kapanidis, Achillefs N.
High-throughput nitrogen-vacancy center imaging for nanodiamond photophysical characterization and pH nanosensing
title High-throughput nitrogen-vacancy center imaging for nanodiamond photophysical characterization and pH nanosensing
title_full High-throughput nitrogen-vacancy center imaging for nanodiamond photophysical characterization and pH nanosensing
title_fullStr High-throughput nitrogen-vacancy center imaging for nanodiamond photophysical characterization and pH nanosensing
title_full_unstemmed High-throughput nitrogen-vacancy center imaging for nanodiamond photophysical characterization and pH nanosensing
title_short High-throughput nitrogen-vacancy center imaging for nanodiamond photophysical characterization and pH nanosensing
title_sort high-throughput nitrogen-vacancy center imaging for nanodiamond photophysical characterization and ph nanosensing
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8329943/
https://www.ncbi.nlm.nih.gov/pubmed/33103692
http://dx.doi.org/10.1039/d0nr05931e
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