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Revisiting organic charge-transfer cocrystals for wide-range tunable, ambient phosphorescence

Simple and efficient designs that enable a wide range of phosphorescence emission in organic materials have ignited scientific interest across diverse fields. One particularly promising approach is the cocrystallization strategy, where organic cocrystals are ingeniously formed through relatively wea...

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Autores principales: Kongasseri, Anju Ajayan, Ansari, Shagufi Naz, Garain, Swadhin, Wagalgave, Sopan M., George, Subi J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10646860/
https://www.ncbi.nlm.nih.gov/pubmed/38020368
http://dx.doi.org/10.1039/d3sc04001a
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author Kongasseri, Anju Ajayan
Ansari, Shagufi Naz
Garain, Swadhin
Wagalgave, Sopan M.
George, Subi J.
author_facet Kongasseri, Anju Ajayan
Ansari, Shagufi Naz
Garain, Swadhin
Wagalgave, Sopan M.
George, Subi J.
author_sort Kongasseri, Anju Ajayan
collection PubMed
description Simple and efficient designs that enable a wide range of phosphorescence emission in organic materials have ignited scientific interest across diverse fields. One particularly promising approach is the cocrystallization strategy, where organic cocrystals are ingeniously formed through relatively weaker and dynamic non-covalent interactions. In our present study, we push the boundaries further by extending this cocrystal strategy to incorporate donor–acceptor components, stabilized by various halogen bonding interactions. This non-covalent complexation triggers ambient, charge-transfer phosphorescence ((3)CT), which can be precisely tuned across a broad spectrum by a modular selection of components with distinct electronic characteristics. At the core of our investigation lies the electron-deficient phosphor, pyromellitic diimide, which, upon complexation with different donors based on their electron-donating strength, manifests a striking array of phosphorescence emission from CT triplet states, spanning from green to yellow to reddish orange accompanied by noteworthy quantum yields. Through a systematic exploration of the electronic properties using spectroscopic studies and molecular organization through single-crystal X-ray diffraction, we decisively establish the molecular origin of the observed phosphorescence. Notably, our work presents, for the first time, an elegant demonstration of tunable (3)CT phosphorescence emission in intermolecular donor–acceptor systems, highlighting their immense significance in the quest for efficient organic phosphors.
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spelling pubmed-106468602023-10-31 Revisiting organic charge-transfer cocrystals for wide-range tunable, ambient phosphorescence Kongasseri, Anju Ajayan Ansari, Shagufi Naz Garain, Swadhin Wagalgave, Sopan M. George, Subi J. Chem Sci Chemistry Simple and efficient designs that enable a wide range of phosphorescence emission in organic materials have ignited scientific interest across diverse fields. One particularly promising approach is the cocrystallization strategy, where organic cocrystals are ingeniously formed through relatively weaker and dynamic non-covalent interactions. In our present study, we push the boundaries further by extending this cocrystal strategy to incorporate donor–acceptor components, stabilized by various halogen bonding interactions. This non-covalent complexation triggers ambient, charge-transfer phosphorescence ((3)CT), which can be precisely tuned across a broad spectrum by a modular selection of components with distinct electronic characteristics. At the core of our investigation lies the electron-deficient phosphor, pyromellitic diimide, which, upon complexation with different donors based on their electron-donating strength, manifests a striking array of phosphorescence emission from CT triplet states, spanning from green to yellow to reddish orange accompanied by noteworthy quantum yields. Through a systematic exploration of the electronic properties using spectroscopic studies and molecular organization through single-crystal X-ray diffraction, we decisively establish the molecular origin of the observed phosphorescence. Notably, our work presents, for the first time, an elegant demonstration of tunable (3)CT phosphorescence emission in intermolecular donor–acceptor systems, highlighting their immense significance in the quest for efficient organic phosphors. The Royal Society of Chemistry 2023-10-31 /pmc/articles/PMC10646860/ /pubmed/38020368 http://dx.doi.org/10.1039/d3sc04001a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Kongasseri, Anju Ajayan
Ansari, Shagufi Naz
Garain, Swadhin
Wagalgave, Sopan M.
George, Subi J.
Revisiting organic charge-transfer cocrystals for wide-range tunable, ambient phosphorescence
title Revisiting organic charge-transfer cocrystals for wide-range tunable, ambient phosphorescence
title_full Revisiting organic charge-transfer cocrystals for wide-range tunable, ambient phosphorescence
title_fullStr Revisiting organic charge-transfer cocrystals for wide-range tunable, ambient phosphorescence
title_full_unstemmed Revisiting organic charge-transfer cocrystals for wide-range tunable, ambient phosphorescence
title_short Revisiting organic charge-transfer cocrystals for wide-range tunable, ambient phosphorescence
title_sort revisiting organic charge-transfer cocrystals for wide-range tunable, ambient phosphorescence
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10646860/
https://www.ncbi.nlm.nih.gov/pubmed/38020368
http://dx.doi.org/10.1039/d3sc04001a
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