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Stacked electrospun polymer nanofiber heterostructures with tailored stimulated emission

We present stacked organic lasing heterostructures made by different species of light-emitting electrospun fibers, each able to provide optical gain in a specific spectral region. A hierarchical architecture is obtained by conformable layers of fibers with disordered two-dimensional organization and...

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Autores principales: Sznitko, Lech, Romano, Luigi, Wawrzynczyk, Dominika, Cyprych, Konrad, Mysliwiec, Jaroslaw, Pisignano, Dario
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6333244/
https://www.ncbi.nlm.nih.gov/pubmed/30713679
http://dx.doi.org/10.1039/c8ra03640c
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author Sznitko, Lech
Romano, Luigi
Wawrzynczyk, Dominika
Cyprych, Konrad
Mysliwiec, Jaroslaw
Pisignano, Dario
author_facet Sznitko, Lech
Romano, Luigi
Wawrzynczyk, Dominika
Cyprych, Konrad
Mysliwiec, Jaroslaw
Pisignano, Dario
author_sort Sznitko, Lech
collection PubMed
description We present stacked organic lasing heterostructures made by different species of light-emitting electrospun fibers, each able to provide optical gain in a specific spectral region. A hierarchical architecture is obtained by conformable layers of fibers with disordered two-dimensional organization and three-dimensional compositional heterogeneity. Lasing polymer fibers are superimposed in layers, showing asymmetric optical behavior from the two sides of the organic heterostructure, and tailored and bichromatic stimulated emission depending on the excitation direction. A marginal role of energy acceptor molecules in determining quenching of high-energy donor species is evidenced by luminescence decay time measurements. These findings show that non-woven stacks of light-emitting electrospun fibers doped with different dyes exhibit critically-suppressed Förster resonance energy transfer, limited at joints between different fiber species. This leads to the obtaining of hybrid materials with mostly physically-separated acceptors and donors, thus largely preventing donor quenching and making it much easier to achieve simultaneous lasing from multiple spectral bands. Coherent backscattering experiments are also performed on the system, suggesting the onset of random lasing features. These new organic lasing systems might find application in microfluidic devices where flexible and bidirectional excitation sources are needed, optical sensors, and nanophotonics.
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spelling pubmed-63332442019-02-01 Stacked electrospun polymer nanofiber heterostructures with tailored stimulated emission Sznitko, Lech Romano, Luigi Wawrzynczyk, Dominika Cyprych, Konrad Mysliwiec, Jaroslaw Pisignano, Dario RSC Adv Chemistry We present stacked organic lasing heterostructures made by different species of light-emitting electrospun fibers, each able to provide optical gain in a specific spectral region. A hierarchical architecture is obtained by conformable layers of fibers with disordered two-dimensional organization and three-dimensional compositional heterogeneity. Lasing polymer fibers are superimposed in layers, showing asymmetric optical behavior from the two sides of the organic heterostructure, and tailored and bichromatic stimulated emission depending on the excitation direction. A marginal role of energy acceptor molecules in determining quenching of high-energy donor species is evidenced by luminescence decay time measurements. These findings show that non-woven stacks of light-emitting electrospun fibers doped with different dyes exhibit critically-suppressed Förster resonance energy transfer, limited at joints between different fiber species. This leads to the obtaining of hybrid materials with mostly physically-separated acceptors and donors, thus largely preventing donor quenching and making it much easier to achieve simultaneous lasing from multiple spectral bands. Coherent backscattering experiments are also performed on the system, suggesting the onset of random lasing features. These new organic lasing systems might find application in microfluidic devices where flexible and bidirectional excitation sources are needed, optical sensors, and nanophotonics. The Royal Society of Chemistry 2018-07-03 /pmc/articles/PMC6333244/ /pubmed/30713679 http://dx.doi.org/10.1039/c8ra03640c Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Sznitko, Lech
Romano, Luigi
Wawrzynczyk, Dominika
Cyprych, Konrad
Mysliwiec, Jaroslaw
Pisignano, Dario
Stacked electrospun polymer nanofiber heterostructures with tailored stimulated emission
title Stacked electrospun polymer nanofiber heterostructures with tailored stimulated emission
title_full Stacked electrospun polymer nanofiber heterostructures with tailored stimulated emission
title_fullStr Stacked electrospun polymer nanofiber heterostructures with tailored stimulated emission
title_full_unstemmed Stacked electrospun polymer nanofiber heterostructures with tailored stimulated emission
title_short Stacked electrospun polymer nanofiber heterostructures with tailored stimulated emission
title_sort stacked electrospun polymer nanofiber heterostructures with tailored stimulated emission
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6333244/
https://www.ncbi.nlm.nih.gov/pubmed/30713679
http://dx.doi.org/10.1039/c8ra03640c
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