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Femto- to Millisecond Time-Resolved Photodynamics of a Double-Functionalized Push–Pull Organic Linker: Potential Candidate for Optoelectronically Active MOFs

The design of improved organic linkers for the further engineering of smarter metal–organic framework (MOF) materials has become a paramount task for a wide number of material scientists. In this report, a luminescent double-functionalized push–pull (electron donor–acceptor) archetype organic molecu...

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Autores principales: Gutiérrez, Mario, Duplouy-Armani, Lucie, Angiolini, Lorenzo, Pintado-Sierra, Mercedes, Sánchez, Félix, Douhal, Abderrazzak
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7352538/
https://www.ncbi.nlm.nih.gov/pubmed/32575438
http://dx.doi.org/10.3390/ijms21124366
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author Gutiérrez, Mario
Duplouy-Armani, Lucie
Angiolini, Lorenzo
Pintado-Sierra, Mercedes
Sánchez, Félix
Douhal, Abderrazzak
author_facet Gutiérrez, Mario
Duplouy-Armani, Lucie
Angiolini, Lorenzo
Pintado-Sierra, Mercedes
Sánchez, Félix
Douhal, Abderrazzak
author_sort Gutiérrez, Mario
collection PubMed
description The design of improved organic linkers for the further engineering of smarter metal–organic framework (MOF) materials has become a paramount task for a wide number of material scientists. In this report, a luminescent double-functionalized push–pull (electron donor–acceptor) archetype organic molecule, dimethyl 4-amino-8-cyanonaphthalene-2,6-dicarboxylate (Me(2)CANADC), has been synthesized and characterized. The optical steady-state properties of Me(2)CANADC are strongly influenced by the surrounding environment as a direct consequence of its strong charge transfer (CT) character. The relaxation from its first electronically excited singlet state follows a double pathway: (1) on one side deactivating from its local excited (LE) state in the sub-picosecond or picosecond time domain, and (2) on the other side undergoing an ultrafast intramolecular charge transfer (ICT) reaction that is slowing down in viscous solvents. The deactivation to the ground state of these species with CT character is the origin of the Me(2)CANADC luminescence, and they present solvent-dependent lifetime values ranging from 8 to 18 ns. The slow photodynamics of Me(2)CANADC unveils the coexistence of a non-emissive triplet excited state and the formation of a long-lived charge separated state (2 µs). These observations highlight the promising optical properties of Me(2)CANADC linker, opening a window for the design of new functional MOFs with huge potential to be applied in the fields of luminescent sensing and optoelectronics.
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spelling pubmed-73525382020-07-15 Femto- to Millisecond Time-Resolved Photodynamics of a Double-Functionalized Push–Pull Organic Linker: Potential Candidate for Optoelectronically Active MOFs Gutiérrez, Mario Duplouy-Armani, Lucie Angiolini, Lorenzo Pintado-Sierra, Mercedes Sánchez, Félix Douhal, Abderrazzak Int J Mol Sci Article The design of improved organic linkers for the further engineering of smarter metal–organic framework (MOF) materials has become a paramount task for a wide number of material scientists. In this report, a luminescent double-functionalized push–pull (electron donor–acceptor) archetype organic molecule, dimethyl 4-amino-8-cyanonaphthalene-2,6-dicarboxylate (Me(2)CANADC), has been synthesized and characterized. The optical steady-state properties of Me(2)CANADC are strongly influenced by the surrounding environment as a direct consequence of its strong charge transfer (CT) character. The relaxation from its first electronically excited singlet state follows a double pathway: (1) on one side deactivating from its local excited (LE) state in the sub-picosecond or picosecond time domain, and (2) on the other side undergoing an ultrafast intramolecular charge transfer (ICT) reaction that is slowing down in viscous solvents. The deactivation to the ground state of these species with CT character is the origin of the Me(2)CANADC luminescence, and they present solvent-dependent lifetime values ranging from 8 to 18 ns. The slow photodynamics of Me(2)CANADC unveils the coexistence of a non-emissive triplet excited state and the formation of a long-lived charge separated state (2 µs). These observations highlight the promising optical properties of Me(2)CANADC linker, opening a window for the design of new functional MOFs with huge potential to be applied in the fields of luminescent sensing and optoelectronics. MDPI 2020-06-19 /pmc/articles/PMC7352538/ /pubmed/32575438 http://dx.doi.org/10.3390/ijms21124366 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Gutiérrez, Mario
Duplouy-Armani, Lucie
Angiolini, Lorenzo
Pintado-Sierra, Mercedes
Sánchez, Félix
Douhal, Abderrazzak
Femto- to Millisecond Time-Resolved Photodynamics of a Double-Functionalized Push–Pull Organic Linker: Potential Candidate for Optoelectronically Active MOFs
title Femto- to Millisecond Time-Resolved Photodynamics of a Double-Functionalized Push–Pull Organic Linker: Potential Candidate for Optoelectronically Active MOFs
title_full Femto- to Millisecond Time-Resolved Photodynamics of a Double-Functionalized Push–Pull Organic Linker: Potential Candidate for Optoelectronically Active MOFs
title_fullStr Femto- to Millisecond Time-Resolved Photodynamics of a Double-Functionalized Push–Pull Organic Linker: Potential Candidate for Optoelectronically Active MOFs
title_full_unstemmed Femto- to Millisecond Time-Resolved Photodynamics of a Double-Functionalized Push–Pull Organic Linker: Potential Candidate for Optoelectronically Active MOFs
title_short Femto- to Millisecond Time-Resolved Photodynamics of a Double-Functionalized Push–Pull Organic Linker: Potential Candidate for Optoelectronically Active MOFs
title_sort femto- to millisecond time-resolved photodynamics of a double-functionalized push–pull organic linker: potential candidate for optoelectronically active mofs
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7352538/
https://www.ncbi.nlm.nih.gov/pubmed/32575438
http://dx.doi.org/10.3390/ijms21124366
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