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Molecular Design of Luminescent Complexes of Eu(III): What Can We Learn from the Ligands

The luminescent metal-organic complexes of rare earth metals are advanced materials with wide application potential in chemistry, biology, and medicine. The luminescence of these materials is due to a rare photophysical phenomenon called antenna effect, in which the excited ligand transmits its ener...

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Autores principales: Romanova, Julia, Lyapchev, Rumen, Kolarski, Mihail, Tsvetkov, Martin, Elenkova, Denitsa, Morgenstern, Bernd, Zaharieva, Joana
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10221419/
https://www.ncbi.nlm.nih.gov/pubmed/37241855
http://dx.doi.org/10.3390/molecules28104113
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author Romanova, Julia
Lyapchev, Rumen
Kolarski, Mihail
Tsvetkov, Martin
Elenkova, Denitsa
Morgenstern, Bernd
Zaharieva, Joana
author_facet Romanova, Julia
Lyapchev, Rumen
Kolarski, Mihail
Tsvetkov, Martin
Elenkova, Denitsa
Morgenstern, Bernd
Zaharieva, Joana
author_sort Romanova, Julia
collection PubMed
description The luminescent metal-organic complexes of rare earth metals are advanced materials with wide application potential in chemistry, biology, and medicine. The luminescence of these materials is due to a rare photophysical phenomenon called antenna effect, in which the excited ligand transmits its energy to the emitting levels of the metal. However, despite the attractive photophysical properties and the intriguing from a fundamental point of view antenna effect, the theoretical molecular design of new luminescent metal-organic complexes of rare earth metals is relatively limited. Our computational study aims to contribute in this direction, and we model the excited state properties of four new phenanthroline-based complexes of Eu(III) using the TD-DFT/TDA approach. The general formula of the complexes is EuL(2)A(3), where L is a phenanthroline with –2–CH(3)O–C(6)H(4), –2–HO–C(6)H(4), –C(6)H(5) or –O–C(6)H(5) substituent at position 2 and A is Cl(−) or NO(3)(−). The antenna effect in all newly proposed complexes is estimated as viable and is expected to possess luminescent properties. The relationship between the electronic properties of the isolated ligands and the luminescent properties of the complexes is explored in detail. Qualitative and quantitative models are derived to interpret the ligand-to-complex relation, and the results are benchmarked with respect to available experimental data. Based on the derived model and common molecular design criteria for efficient antenna ligands, we choose phenanthroline with –O–C(6)H(5) substituent to perform complexation with Eu(III) in the presence of NO(3)¯. Experimental results for the newly synthesized Eu(III) complex are reported with a luminescent quantum yield of about 24% in acetonitrile. The study demonstrates the potential of low-cost computational models for discovering metal-organic luminescent materials.
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spelling pubmed-102214192023-05-28 Molecular Design of Luminescent Complexes of Eu(III): What Can We Learn from the Ligands Romanova, Julia Lyapchev, Rumen Kolarski, Mihail Tsvetkov, Martin Elenkova, Denitsa Morgenstern, Bernd Zaharieva, Joana Molecules Article The luminescent metal-organic complexes of rare earth metals are advanced materials with wide application potential in chemistry, biology, and medicine. The luminescence of these materials is due to a rare photophysical phenomenon called antenna effect, in which the excited ligand transmits its energy to the emitting levels of the metal. However, despite the attractive photophysical properties and the intriguing from a fundamental point of view antenna effect, the theoretical molecular design of new luminescent metal-organic complexes of rare earth metals is relatively limited. Our computational study aims to contribute in this direction, and we model the excited state properties of four new phenanthroline-based complexes of Eu(III) using the TD-DFT/TDA approach. The general formula of the complexes is EuL(2)A(3), where L is a phenanthroline with –2–CH(3)O–C(6)H(4), –2–HO–C(6)H(4), –C(6)H(5) or –O–C(6)H(5) substituent at position 2 and A is Cl(−) or NO(3)(−). The antenna effect in all newly proposed complexes is estimated as viable and is expected to possess luminescent properties. The relationship between the electronic properties of the isolated ligands and the luminescent properties of the complexes is explored in detail. Qualitative and quantitative models are derived to interpret the ligand-to-complex relation, and the results are benchmarked with respect to available experimental data. Based on the derived model and common molecular design criteria for efficient antenna ligands, we choose phenanthroline with –O–C(6)H(5) substituent to perform complexation with Eu(III) in the presence of NO(3)¯. Experimental results for the newly synthesized Eu(III) complex are reported with a luminescent quantum yield of about 24% in acetonitrile. The study demonstrates the potential of low-cost computational models for discovering metal-organic luminescent materials. MDPI 2023-05-16 /pmc/articles/PMC10221419/ /pubmed/37241855 http://dx.doi.org/10.3390/molecules28104113 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/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 (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Romanova, Julia
Lyapchev, Rumen
Kolarski, Mihail
Tsvetkov, Martin
Elenkova, Denitsa
Morgenstern, Bernd
Zaharieva, Joana
Molecular Design of Luminescent Complexes of Eu(III): What Can We Learn from the Ligands
title Molecular Design of Luminescent Complexes of Eu(III): What Can We Learn from the Ligands
title_full Molecular Design of Luminescent Complexes of Eu(III): What Can We Learn from the Ligands
title_fullStr Molecular Design of Luminescent Complexes of Eu(III): What Can We Learn from the Ligands
title_full_unstemmed Molecular Design of Luminescent Complexes of Eu(III): What Can We Learn from the Ligands
title_short Molecular Design of Luminescent Complexes of Eu(III): What Can We Learn from the Ligands
title_sort molecular design of luminescent complexes of eu(iii): what can we learn from the ligands
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10221419/
https://www.ncbi.nlm.nih.gov/pubmed/37241855
http://dx.doi.org/10.3390/molecules28104113
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