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Exciton Coupling and Conformational Changes Impacting the Excited State Properties of Metal Organic Frameworks

In recent years, the photophysical properties of crystalline metal-organic frameworks (MOFs) have become increasingly relevant for their potential application in light-emitting devices, photovoltaics, nonlinear optics and sensing. The availability of high-quality experimental data for such systems m...

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Autores principales: Windischbacher, Andreas, Steiner, Luca, Haldar, Ritesh, Wöll, Christof, Zojer, Egbert, Kelterer, Anne-Marie
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7570727/
https://www.ncbi.nlm.nih.gov/pubmed/32942666
http://dx.doi.org/10.3390/molecules25184230
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author Windischbacher, Andreas
Steiner, Luca
Haldar, Ritesh
Wöll, Christof
Zojer, Egbert
Kelterer, Anne-Marie
author_facet Windischbacher, Andreas
Steiner, Luca
Haldar, Ritesh
Wöll, Christof
Zojer, Egbert
Kelterer, Anne-Marie
author_sort Windischbacher, Andreas
collection PubMed
description In recent years, the photophysical properties of crystalline metal-organic frameworks (MOFs) have become increasingly relevant for their potential application in light-emitting devices, photovoltaics, nonlinear optics and sensing. The availability of high-quality experimental data for such systems makes them ideally suited for a validation of quantum mechanical simulations, aiming at an in-depth atomistic understanding of photophysical phenomena. Here we present a computational DFT study of the absorption and emission characteristics of a Zn-based surface-anchored metal-organic framework (Zn-SURMOF-2) containing anthracenedibenzoic acid (ADB) as linker. Combining band-structure and cluster-based simulations on ADB chromophores in various conformations and aggregation states, we are able to provide a detailed explanation of the experimentally observed photophysical properties of Zn-ADB SURMOF-2: The unexpected (weak) red-shift of the absorption maxima upon incorporating ADB chromophores into SURMOF-2 can be explained by a combination of excitonic coupling effects with conformational changes of the chromophores already in their ground state. As far as the unusually large red-shift of the emission of Zn-ADB SURMOF-2 is concerned, based on our simulations, we attribute it to a modification of the exciton coupling compared to conventional H-aggregates, which results from a relative slip of the centers of neighboring chromophores upon incorporation in Zn-ADB SURMOF-2.
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spelling pubmed-75707272020-10-28 Exciton Coupling and Conformational Changes Impacting the Excited State Properties of Metal Organic Frameworks Windischbacher, Andreas Steiner, Luca Haldar, Ritesh Wöll, Christof Zojer, Egbert Kelterer, Anne-Marie Molecules Article In recent years, the photophysical properties of crystalline metal-organic frameworks (MOFs) have become increasingly relevant for their potential application in light-emitting devices, photovoltaics, nonlinear optics and sensing. The availability of high-quality experimental data for such systems makes them ideally suited for a validation of quantum mechanical simulations, aiming at an in-depth atomistic understanding of photophysical phenomena. Here we present a computational DFT study of the absorption and emission characteristics of a Zn-based surface-anchored metal-organic framework (Zn-SURMOF-2) containing anthracenedibenzoic acid (ADB) as linker. Combining band-structure and cluster-based simulations on ADB chromophores in various conformations and aggregation states, we are able to provide a detailed explanation of the experimentally observed photophysical properties of Zn-ADB SURMOF-2: The unexpected (weak) red-shift of the absorption maxima upon incorporating ADB chromophores into SURMOF-2 can be explained by a combination of excitonic coupling effects with conformational changes of the chromophores already in their ground state. As far as the unusually large red-shift of the emission of Zn-ADB SURMOF-2 is concerned, based on our simulations, we attribute it to a modification of the exciton coupling compared to conventional H-aggregates, which results from a relative slip of the centers of neighboring chromophores upon incorporation in Zn-ADB SURMOF-2. MDPI 2020-09-15 /pmc/articles/PMC7570727/ /pubmed/32942666 http://dx.doi.org/10.3390/molecules25184230 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
Windischbacher, Andreas
Steiner, Luca
Haldar, Ritesh
Wöll, Christof
Zojer, Egbert
Kelterer, Anne-Marie
Exciton Coupling and Conformational Changes Impacting the Excited State Properties of Metal Organic Frameworks
title Exciton Coupling and Conformational Changes Impacting the Excited State Properties of Metal Organic Frameworks
title_full Exciton Coupling and Conformational Changes Impacting the Excited State Properties of Metal Organic Frameworks
title_fullStr Exciton Coupling and Conformational Changes Impacting the Excited State Properties of Metal Organic Frameworks
title_full_unstemmed Exciton Coupling and Conformational Changes Impacting the Excited State Properties of Metal Organic Frameworks
title_short Exciton Coupling and Conformational Changes Impacting the Excited State Properties of Metal Organic Frameworks
title_sort exciton coupling and conformational changes impacting the excited state properties of metal organic frameworks
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7570727/
https://www.ncbi.nlm.nih.gov/pubmed/32942666
http://dx.doi.org/10.3390/molecules25184230
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