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Driving high quantum yield NIR emission through proquinoidal linkage motifs in conjugated supermolecular arrays

High quantum yield NIR fluorophores are rare. Factors that drive low emission quantum yields at long wavelength include the facts that radiative rate constants increase proportional to the cube of the emission energy, while nonradiative rate constants increase in an approximately exponentially with...

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Autores principales: Peterson, Erin J., Qi, Wei, Stanton, Ian N., Zhang, Peng, Therien, Michael J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8163388/
https://www.ncbi.nlm.nih.gov/pubmed/34123083
http://dx.doi.org/10.1039/d0sc03446k
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author Peterson, Erin J.
Qi, Wei
Stanton, Ian N.
Zhang, Peng
Therien, Michael J.
author_facet Peterson, Erin J.
Qi, Wei
Stanton, Ian N.
Zhang, Peng
Therien, Michael J.
author_sort Peterson, Erin J.
collection PubMed
description High quantum yield NIR fluorophores are rare. Factors that drive low emission quantum yields at long wavelength include the facts that radiative rate constants increase proportional to the cube of the emission energy, while nonradiative rate constants increase in an approximately exponentially with decreasing S(0)–S(1) energy gaps (in accordance with the energy gap law). This work demonstrates how the proquinoidal BTD building blocks can be utilized to minimize the extent of excited-state structural relaxation relative to the ground-state conformation in highly conjugated porphyrin oligomers, and shows that 4-ethynylbenzo[c][1,2,5]thiadiazole (E-BTD) units that terminate meso-to-meso ethyne-bridged (porphinato)zinc (PZn(n)) arrays, and 4,7-diethynylbenzo[c][1,2,5]thiadiazole (E-BTD-E) spacers that are integrated into the backbone of these compositions, elucidate new classes of impressive NIR fluorophores. We report the syntheses, electronic structural properties, and emissive characteristics of neoteric PZn-(BTD-PZn)(n), PZn(2)-(BTD-PZn(2))(n), and BTD-PZn(n)-BTD fluorophores. Absolute fluorescence quantum yield (ϕ(f)) measurements, acquired using a calibrated integrating-sphere-based measurement system, demonstrate that these supermolecules display extraordinary ϕ(f) values that range from 10–25% in THF solvent, and between 28–36% in toluene solvent over the 700–900 nm window of the NIR. These studies underscore how the regulation of proquinoidal conjugation motifs can be exploited to drive excited-state dynamical properties important for high quantum yield long-wavelength fluorescence emission.
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spelling pubmed-81633882021-06-11 Driving high quantum yield NIR emission through proquinoidal linkage motifs in conjugated supermolecular arrays Peterson, Erin J. Qi, Wei Stanton, Ian N. Zhang, Peng Therien, Michael J. Chem Sci Chemistry High quantum yield NIR fluorophores are rare. Factors that drive low emission quantum yields at long wavelength include the facts that radiative rate constants increase proportional to the cube of the emission energy, while nonradiative rate constants increase in an approximately exponentially with decreasing S(0)–S(1) energy gaps (in accordance with the energy gap law). This work demonstrates how the proquinoidal BTD building blocks can be utilized to minimize the extent of excited-state structural relaxation relative to the ground-state conformation in highly conjugated porphyrin oligomers, and shows that 4-ethynylbenzo[c][1,2,5]thiadiazole (E-BTD) units that terminate meso-to-meso ethyne-bridged (porphinato)zinc (PZn(n)) arrays, and 4,7-diethynylbenzo[c][1,2,5]thiadiazole (E-BTD-E) spacers that are integrated into the backbone of these compositions, elucidate new classes of impressive NIR fluorophores. We report the syntheses, electronic structural properties, and emissive characteristics of neoteric PZn-(BTD-PZn)(n), PZn(2)-(BTD-PZn(2))(n), and BTD-PZn(n)-BTD fluorophores. Absolute fluorescence quantum yield (ϕ(f)) measurements, acquired using a calibrated integrating-sphere-based measurement system, demonstrate that these supermolecules display extraordinary ϕ(f) values that range from 10–25% in THF solvent, and between 28–36% in toluene solvent over the 700–900 nm window of the NIR. These studies underscore how the regulation of proquinoidal conjugation motifs can be exploited to drive excited-state dynamical properties important for high quantum yield long-wavelength fluorescence emission. The Royal Society of Chemistry 2020-08-05 /pmc/articles/PMC8163388/ /pubmed/34123083 http://dx.doi.org/10.1039/d0sc03446k Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Peterson, Erin J.
Qi, Wei
Stanton, Ian N.
Zhang, Peng
Therien, Michael J.
Driving high quantum yield NIR emission through proquinoidal linkage motifs in conjugated supermolecular arrays
title Driving high quantum yield NIR emission through proquinoidal linkage motifs in conjugated supermolecular arrays
title_full Driving high quantum yield NIR emission through proquinoidal linkage motifs in conjugated supermolecular arrays
title_fullStr Driving high quantum yield NIR emission through proquinoidal linkage motifs in conjugated supermolecular arrays
title_full_unstemmed Driving high quantum yield NIR emission through proquinoidal linkage motifs in conjugated supermolecular arrays
title_short Driving high quantum yield NIR emission through proquinoidal linkage motifs in conjugated supermolecular arrays
title_sort driving high quantum yield nir emission through proquinoidal linkage motifs in conjugated supermolecular arrays
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8163388/
https://www.ncbi.nlm.nih.gov/pubmed/34123083
http://dx.doi.org/10.1039/d0sc03446k
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