Cargando…

A sensing mechanism for the detection of carbon nanotubes using selective photoluminescent probes based on ionic complexes with organic dyes

The multifunctional properties of carbon nanotubes (CNTs) make them a powerful platform for unprecedented innovations in a variety of practical applications. As a result of the surging growth of nanotechnology, nanotubes present a potential problem as an environmental pollutant, and as such, an effi...

Descripción completa

Detalles Bibliográficos
Autores principales: Lutsyk, Petro, Arif, Raz, Hruby, Jan, Bukivskyi, Anatolii, Vinijchuk, Olexander, Shandura, Mykola, Yakubovskyi, Viktor, Kovtun, Yuri, Rance, Graham A, Fay, Michael, Piryatinski, Yuri, Kachkovsky, Oleksiy, Verbitsky, Anatoli, Rozhin, Aleksey
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6062430/
https://www.ncbi.nlm.nih.gov/pubmed/30167142
http://dx.doi.org/10.1038/lsa.2016.28
_version_ 1783342376308178944
author Lutsyk, Petro
Arif, Raz
Hruby, Jan
Bukivskyi, Anatolii
Vinijchuk, Olexander
Shandura, Mykola
Yakubovskyi, Viktor
Kovtun, Yuri
Rance, Graham A
Fay, Michael
Piryatinski, Yuri
Kachkovsky, Oleksiy
Verbitsky, Anatoli
Rozhin, Aleksey
author_facet Lutsyk, Petro
Arif, Raz
Hruby, Jan
Bukivskyi, Anatolii
Vinijchuk, Olexander
Shandura, Mykola
Yakubovskyi, Viktor
Kovtun, Yuri
Rance, Graham A
Fay, Michael
Piryatinski, Yuri
Kachkovsky, Oleksiy
Verbitsky, Anatoli
Rozhin, Aleksey
author_sort Lutsyk, Petro
collection PubMed
description The multifunctional properties of carbon nanotubes (CNTs) make them a powerful platform for unprecedented innovations in a variety of practical applications. As a result of the surging growth of nanotechnology, nanotubes present a potential problem as an environmental pollutant, and as such, an efficient method for their rapid detection must be established. Here, we propose a novel type of ionic sensor complex for detecting CNTs – an organic dye that responds sensitively and selectively to CNTs with a photoluminescent signal. The complexes are formed through Coulomb attractions between dye molecules with uncompensated charges and CNTs covered with an ionic surfactant in water. We demonstrate that the photoluminescent excitation of the dye can be transferred to the nanotubes, resulting in selective and strong amplification (up to a factor of 6) of the light emission from the excitonic levels of CNTs in the near-infrared spectral range, as experimentally observed via excitation-emission photoluminescence (PL) mapping. The chirality of the nanotubes and the type of ionic surfactant used to disperse the nanotubes both strongly affect the amplification; thus, the complexation provides sensing selectivity towards specific CNTs. Additionally, neither similar uncharged dyes nor CNTs covered with neutral surfactant form such complexes. As model organic molecules, we use a family of polymethine dyes with an easily tailorable molecular structure and, consequently, tunable absorbance and PL characteristics. This provides us with a versatile tool for the controllable photonic and electronic engineering of an efficient probe for CNT detection.
format Online
Article
Text
id pubmed-6062430
institution National Center for Biotechnology Information
language English
publishDate 2016
publisher Nature Publishing Group
record_format MEDLINE/PubMed
spelling pubmed-60624302018-08-30 A sensing mechanism for the detection of carbon nanotubes using selective photoluminescent probes based on ionic complexes with organic dyes Lutsyk, Petro Arif, Raz Hruby, Jan Bukivskyi, Anatolii Vinijchuk, Olexander Shandura, Mykola Yakubovskyi, Viktor Kovtun, Yuri Rance, Graham A Fay, Michael Piryatinski, Yuri Kachkovsky, Oleksiy Verbitsky, Anatoli Rozhin, Aleksey Light Sci Appl Original Article The multifunctional properties of carbon nanotubes (CNTs) make them a powerful platform for unprecedented innovations in a variety of practical applications. As a result of the surging growth of nanotechnology, nanotubes present a potential problem as an environmental pollutant, and as such, an efficient method for their rapid detection must be established. Here, we propose a novel type of ionic sensor complex for detecting CNTs – an organic dye that responds sensitively and selectively to CNTs with a photoluminescent signal. The complexes are formed through Coulomb attractions between dye molecules with uncompensated charges and CNTs covered with an ionic surfactant in water. We demonstrate that the photoluminescent excitation of the dye can be transferred to the nanotubes, resulting in selective and strong amplification (up to a factor of 6) of the light emission from the excitonic levels of CNTs in the near-infrared spectral range, as experimentally observed via excitation-emission photoluminescence (PL) mapping. The chirality of the nanotubes and the type of ionic surfactant used to disperse the nanotubes both strongly affect the amplification; thus, the complexation provides sensing selectivity towards specific CNTs. Additionally, neither similar uncharged dyes nor CNTs covered with neutral surfactant form such complexes. As model organic molecules, we use a family of polymethine dyes with an easily tailorable molecular structure and, consequently, tunable absorbance and PL characteristics. This provides us with a versatile tool for the controllable photonic and electronic engineering of an efficient probe for CNT detection. Nature Publishing Group 2016-02-12 /pmc/articles/PMC6062430/ /pubmed/30167142 http://dx.doi.org/10.1038/lsa.2016.28 Text en Copyright © 2016 Changchun Institute of Optics, Fine Mechanics and Physics http://creativecommons.org/licenses/by-nc-nd/4.0/ This work is licensed under a Creative Commons Attribution-NonCommercial-NoDerivs 4.0 Unported License. The images or other third party material in this article are included in the article's Creative Commons license, unless indicated otherwise in the credit line; if the material is not included under the Creative Commons license, users will need to obtain permission from the license holder to reproduce the material. To view a copy of this license, visit http://creativecommons.org/licenses/by-nc-nd/4.0/
spellingShingle Original Article
Lutsyk, Petro
Arif, Raz
Hruby, Jan
Bukivskyi, Anatolii
Vinijchuk, Olexander
Shandura, Mykola
Yakubovskyi, Viktor
Kovtun, Yuri
Rance, Graham A
Fay, Michael
Piryatinski, Yuri
Kachkovsky, Oleksiy
Verbitsky, Anatoli
Rozhin, Aleksey
A sensing mechanism for the detection of carbon nanotubes using selective photoluminescent probes based on ionic complexes with organic dyes
title A sensing mechanism for the detection of carbon nanotubes using selective photoluminescent probes based on ionic complexes with organic dyes
title_full A sensing mechanism for the detection of carbon nanotubes using selective photoluminescent probes based on ionic complexes with organic dyes
title_fullStr A sensing mechanism for the detection of carbon nanotubes using selective photoluminescent probes based on ionic complexes with organic dyes
title_full_unstemmed A sensing mechanism for the detection of carbon nanotubes using selective photoluminescent probes based on ionic complexes with organic dyes
title_short A sensing mechanism for the detection of carbon nanotubes using selective photoluminescent probes based on ionic complexes with organic dyes
title_sort sensing mechanism for the detection of carbon nanotubes using selective photoluminescent probes based on ionic complexes with organic dyes
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6062430/
https://www.ncbi.nlm.nih.gov/pubmed/30167142
http://dx.doi.org/10.1038/lsa.2016.28
work_keys_str_mv AT lutsykpetro asensingmechanismforthedetectionofcarbonnanotubesusingselectivephotoluminescentprobesbasedonioniccomplexeswithorganicdyes
AT arifraz asensingmechanismforthedetectionofcarbonnanotubesusingselectivephotoluminescentprobesbasedonioniccomplexeswithorganicdyes
AT hrubyjan asensingmechanismforthedetectionofcarbonnanotubesusingselectivephotoluminescentprobesbasedonioniccomplexeswithorganicdyes
AT bukivskyianatolii asensingmechanismforthedetectionofcarbonnanotubesusingselectivephotoluminescentprobesbasedonioniccomplexeswithorganicdyes
AT vinijchukolexander asensingmechanismforthedetectionofcarbonnanotubesusingselectivephotoluminescentprobesbasedonioniccomplexeswithorganicdyes
AT shanduramykola asensingmechanismforthedetectionofcarbonnanotubesusingselectivephotoluminescentprobesbasedonioniccomplexeswithorganicdyes
AT yakubovskyiviktor asensingmechanismforthedetectionofcarbonnanotubesusingselectivephotoluminescentprobesbasedonioniccomplexeswithorganicdyes
AT kovtunyuri asensingmechanismforthedetectionofcarbonnanotubesusingselectivephotoluminescentprobesbasedonioniccomplexeswithorganicdyes
AT rancegrahama asensingmechanismforthedetectionofcarbonnanotubesusingselectivephotoluminescentprobesbasedonioniccomplexeswithorganicdyes
AT faymichael asensingmechanismforthedetectionofcarbonnanotubesusingselectivephotoluminescentprobesbasedonioniccomplexeswithorganicdyes
AT piryatinskiyuri asensingmechanismforthedetectionofcarbonnanotubesusingselectivephotoluminescentprobesbasedonioniccomplexeswithorganicdyes
AT kachkovskyoleksiy asensingmechanismforthedetectionofcarbonnanotubesusingselectivephotoluminescentprobesbasedonioniccomplexeswithorganicdyes
AT verbitskyanatoli asensingmechanismforthedetectionofcarbonnanotubesusingselectivephotoluminescentprobesbasedonioniccomplexeswithorganicdyes
AT rozhinaleksey asensingmechanismforthedetectionofcarbonnanotubesusingselectivephotoluminescentprobesbasedonioniccomplexeswithorganicdyes
AT lutsykpetro sensingmechanismforthedetectionofcarbonnanotubesusingselectivephotoluminescentprobesbasedonioniccomplexeswithorganicdyes
AT arifraz sensingmechanismforthedetectionofcarbonnanotubesusingselectivephotoluminescentprobesbasedonioniccomplexeswithorganicdyes
AT hrubyjan sensingmechanismforthedetectionofcarbonnanotubesusingselectivephotoluminescentprobesbasedonioniccomplexeswithorganicdyes
AT bukivskyianatolii sensingmechanismforthedetectionofcarbonnanotubesusingselectivephotoluminescentprobesbasedonioniccomplexeswithorganicdyes
AT vinijchukolexander sensingmechanismforthedetectionofcarbonnanotubesusingselectivephotoluminescentprobesbasedonioniccomplexeswithorganicdyes
AT shanduramykola sensingmechanismforthedetectionofcarbonnanotubesusingselectivephotoluminescentprobesbasedonioniccomplexeswithorganicdyes
AT yakubovskyiviktor sensingmechanismforthedetectionofcarbonnanotubesusingselectivephotoluminescentprobesbasedonioniccomplexeswithorganicdyes
AT kovtunyuri sensingmechanismforthedetectionofcarbonnanotubesusingselectivephotoluminescentprobesbasedonioniccomplexeswithorganicdyes
AT rancegrahama sensingmechanismforthedetectionofcarbonnanotubesusingselectivephotoluminescentprobesbasedonioniccomplexeswithorganicdyes
AT faymichael sensingmechanismforthedetectionofcarbonnanotubesusingselectivephotoluminescentprobesbasedonioniccomplexeswithorganicdyes
AT piryatinskiyuri sensingmechanismforthedetectionofcarbonnanotubesusingselectivephotoluminescentprobesbasedonioniccomplexeswithorganicdyes
AT kachkovskyoleksiy sensingmechanismforthedetectionofcarbonnanotubesusingselectivephotoluminescentprobesbasedonioniccomplexeswithorganicdyes
AT verbitskyanatoli sensingmechanismforthedetectionofcarbonnanotubesusingselectivephotoluminescentprobesbasedonioniccomplexeswithorganicdyes
AT rozhinaleksey sensingmechanismforthedetectionofcarbonnanotubesusingselectivephotoluminescentprobesbasedonioniccomplexeswithorganicdyes