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Matrix‐induced Linear Stark Effect of Single Dibenzoterrylene Molecules in 2,3‐Dibromonaphthalene Crystal

Absorption and fluorescence from single molecules can be tuned by applying an external electric field – a phenomenon known as the Stark effect. A linear Stark effect is associated to a lack of centrosymmetry of the guest in the host matrix. Centrosymmetric guests can display a linear Stark effect in...

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Autores principales: Moradi, Amin, Ristanović, Zoran, Orrit, Michel, Deperasińska, Irena, Kozankiewicz, Bolesław
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6391937/
https://www.ncbi.nlm.nih.gov/pubmed/30427119
http://dx.doi.org/10.1002/cphc.201800937
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author Moradi, Amin
Ristanović, Zoran
Orrit, Michel
Deperasińska, Irena
Kozankiewicz, Bolesław
author_facet Moradi, Amin
Ristanović, Zoran
Orrit, Michel
Deperasińska, Irena
Kozankiewicz, Bolesław
author_sort Moradi, Amin
collection PubMed
description Absorption and fluorescence from single molecules can be tuned by applying an external electric field – a phenomenon known as the Stark effect. A linear Stark effect is associated to a lack of centrosymmetry of the guest in the host matrix. Centrosymmetric guests can display a linear Stark effect in disordered matrices, but the response of individual guest molecules is often relatively weak and non‐uniform, with a broad distribution of the Stark coefficients. Here we introduce a novel single‐molecule host‐guest system, dibenzoterrylene (DBT) in 2,3‐dibromonaphthalene (DBN) crystal. Fluorescent DBT molecules show excellent spectral stability with a large linear Stark effect, of the order of 1.5 GHz/kVcm(−1), corresponding to an electric dipole moment change of around 2 D. Remarkably, when the electric field is aligned with the a crystal axis, nearly all DBT molecules show either positive or negative Stark shifts with similar absolute values. These results are consistent with quantum chemistry calculations. Those indicate that DBT substitutes three DBN molecules along the a‐axis, giving rise to eight equivalent embedding sites, related by the three glide planes of the orthorhombic crystal. The static dipole moment of DBT molecules is created by host‐induced breaking of the inversion symmetry. This new host–guest system is promising for applications that require a high sensitivity of fluorescent emitters to electric fields, for example to probe weak electric fields.
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spelling pubmed-63919372019-03-07 Matrix‐induced Linear Stark Effect of Single Dibenzoterrylene Molecules in 2,3‐Dibromonaphthalene Crystal Moradi, Amin Ristanović, Zoran Orrit, Michel Deperasińska, Irena Kozankiewicz, Bolesław Chemphyschem Articles Absorption and fluorescence from single molecules can be tuned by applying an external electric field – a phenomenon known as the Stark effect. A linear Stark effect is associated to a lack of centrosymmetry of the guest in the host matrix. Centrosymmetric guests can display a linear Stark effect in disordered matrices, but the response of individual guest molecules is often relatively weak and non‐uniform, with a broad distribution of the Stark coefficients. Here we introduce a novel single‐molecule host‐guest system, dibenzoterrylene (DBT) in 2,3‐dibromonaphthalene (DBN) crystal. Fluorescent DBT molecules show excellent spectral stability with a large linear Stark effect, of the order of 1.5 GHz/kVcm(−1), corresponding to an electric dipole moment change of around 2 D. Remarkably, when the electric field is aligned with the a crystal axis, nearly all DBT molecules show either positive or negative Stark shifts with similar absolute values. These results are consistent with quantum chemistry calculations. Those indicate that DBT substitutes three DBN molecules along the a‐axis, giving rise to eight equivalent embedding sites, related by the three glide planes of the orthorhombic crystal. The static dipole moment of DBT molecules is created by host‐induced breaking of the inversion symmetry. This new host–guest system is promising for applications that require a high sensitivity of fluorescent emitters to electric fields, for example to probe weak electric fields. John Wiley and Sons Inc. 2018-11-28 2019-01-07 /pmc/articles/PMC6391937/ /pubmed/30427119 http://dx.doi.org/10.1002/cphc.201800937 Text en © 2018 The Authors. Published by Wiley-VCH Verlag GmbH & Co. KGaA. This is an open access article under the terms of the http://creativecommons.org/licenses/by-nc-nd/4.0/ License, which permits use and distribution in any medium, provided the original work is properly cited, the use is non‐commercial and no modifications or adaptations are made.
spellingShingle Articles
Moradi, Amin
Ristanović, Zoran
Orrit, Michel
Deperasińska, Irena
Kozankiewicz, Bolesław
Matrix‐induced Linear Stark Effect of Single Dibenzoterrylene Molecules in 2,3‐Dibromonaphthalene Crystal
title Matrix‐induced Linear Stark Effect of Single Dibenzoterrylene Molecules in 2,3‐Dibromonaphthalene Crystal
title_full Matrix‐induced Linear Stark Effect of Single Dibenzoterrylene Molecules in 2,3‐Dibromonaphthalene Crystal
title_fullStr Matrix‐induced Linear Stark Effect of Single Dibenzoterrylene Molecules in 2,3‐Dibromonaphthalene Crystal
title_full_unstemmed Matrix‐induced Linear Stark Effect of Single Dibenzoterrylene Molecules in 2,3‐Dibromonaphthalene Crystal
title_short Matrix‐induced Linear Stark Effect of Single Dibenzoterrylene Molecules in 2,3‐Dibromonaphthalene Crystal
title_sort matrix‐induced linear stark effect of single dibenzoterrylene molecules in 2,3‐dibromonaphthalene crystal
topic Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6391937/
https://www.ncbi.nlm.nih.gov/pubmed/30427119
http://dx.doi.org/10.1002/cphc.201800937
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