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Controlling the excited-state dynamics of low band gap, near-infrared absorbers via proquinoidal unit electronic structural modulation

While the influence of proquinoidal character upon the linear absorption spectrum of low optical bandgap π-conjugated polymers and molecules is well understood, its impact upon excited-state relaxation pathways and dynamics remains obscure. We report the syntheses, electronic structural properties,...

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Autores principales: Bai, Yusong, Rawson, Jeff, Roget, Sean A., Olivier, Jean-Hubert, Lin, Jiaxing, Zhang, Peng, Beratan, David N., Therien, Michael J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Royal Society of Chemistry 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5619129/
https://www.ncbi.nlm.nih.gov/pubmed/28989620
http://dx.doi.org/10.1039/c7sc02150j
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author Bai, Yusong
Rawson, Jeff
Roget, Sean A.
Olivier, Jean-Hubert
Lin, Jiaxing
Zhang, Peng
Beratan, David N.
Therien, Michael J.
author_facet Bai, Yusong
Rawson, Jeff
Roget, Sean A.
Olivier, Jean-Hubert
Lin, Jiaxing
Zhang, Peng
Beratan, David N.
Therien, Michael J.
author_sort Bai, Yusong
collection PubMed
description While the influence of proquinoidal character upon the linear absorption spectrum of low optical bandgap π-conjugated polymers and molecules is well understood, its impact upon excited-state relaxation pathways and dynamics remains obscure. We report the syntheses, electronic structural properties, and excited-state dynamics of a series of model highly conjugated near-infrared (NIR)-absorbing chromophores based on a (porphinato)metal(ii)-proquinoidal spacer-(porphinato)metal(ii) (PM-Sp-PM) structural motif. A combination of excited-state dynamical studies and time-dependent density functional theory calculations: (i) points to the cardinal role that excited-state configuration interaction (CI) plays in determining the magnitudes of S(1) → S(0) radiative (k (r)), S(1) → T(1) intersystem crossing (k (ISC)), and S(1) → S(0) internal conversion (k (IC)) rate constants in these PM-Sp-PM chromophores, and (ii) suggests that a primary determinant of CI magnitude derives from the energetic alignment of the PM and Sp fragment LUMOs (ΔE (L)). These insights not only enable steering of excited-state relaxation dynamics of high oscillator strength NIR absorbers to realize either substantial fluorescence or long-lived triplets (τ (T(1)) > μs) generated at unit quantum yield (Φ (ISC) = 100%), but also crafting of those having counter-intuitive properties: for example, while (porphinato)platinum compounds are well known to generate non-emissive triplet states (Φ (ISC) = 100%) upon optical excitation at ambient temperature, diminishing the extent of excited-state CI in these systems realizes long-wavelength absorbing heavy-metal fluorophores. This work highlights approaches to: (i) modulate low-lying singlet excited-state lifetime over the picosecond-to-nanosecond time domain, (ii) achieve NIR fluorescence with quantum yields up to 25%, (iii) tune the magnitude of S(1)–T(1) ISC rate constant from 10(9) to 10(12) s(–1) and (iv) realize T(1)-state lifetimes that range from ∼0.1 to several μs, for these model PM-Sp-PM chromophores, and renders new insights to evolve bespoke photophysical properties for low optical bandgap π-conjugated polymers and molecules based on proquinoidal conjugation motifs.
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spelling pubmed-56191292017-10-06 Controlling the excited-state dynamics of low band gap, near-infrared absorbers via proquinoidal unit electronic structural modulation Bai, Yusong Rawson, Jeff Roget, Sean A. Olivier, Jean-Hubert Lin, Jiaxing Zhang, Peng Beratan, David N. Therien, Michael J. Chem Sci Chemistry While the influence of proquinoidal character upon the linear absorption spectrum of low optical bandgap π-conjugated polymers and molecules is well understood, its impact upon excited-state relaxation pathways and dynamics remains obscure. We report the syntheses, electronic structural properties, and excited-state dynamics of a series of model highly conjugated near-infrared (NIR)-absorbing chromophores based on a (porphinato)metal(ii)-proquinoidal spacer-(porphinato)metal(ii) (PM-Sp-PM) structural motif. A combination of excited-state dynamical studies and time-dependent density functional theory calculations: (i) points to the cardinal role that excited-state configuration interaction (CI) plays in determining the magnitudes of S(1) → S(0) radiative (k (r)), S(1) → T(1) intersystem crossing (k (ISC)), and S(1) → S(0) internal conversion (k (IC)) rate constants in these PM-Sp-PM chromophores, and (ii) suggests that a primary determinant of CI magnitude derives from the energetic alignment of the PM and Sp fragment LUMOs (ΔE (L)). These insights not only enable steering of excited-state relaxation dynamics of high oscillator strength NIR absorbers to realize either substantial fluorescence or long-lived triplets (τ (T(1)) > μs) generated at unit quantum yield (Φ (ISC) = 100%), but also crafting of those having counter-intuitive properties: for example, while (porphinato)platinum compounds are well known to generate non-emissive triplet states (Φ (ISC) = 100%) upon optical excitation at ambient temperature, diminishing the extent of excited-state CI in these systems realizes long-wavelength absorbing heavy-metal fluorophores. This work highlights approaches to: (i) modulate low-lying singlet excited-state lifetime over the picosecond-to-nanosecond time domain, (ii) achieve NIR fluorescence with quantum yields up to 25%, (iii) tune the magnitude of S(1)–T(1) ISC rate constant from 10(9) to 10(12) s(–1) and (iv) realize T(1)-state lifetimes that range from ∼0.1 to several μs, for these model PM-Sp-PM chromophores, and renders new insights to evolve bespoke photophysical properties for low optical bandgap π-conjugated polymers and molecules based on proquinoidal conjugation motifs. Royal Society of Chemistry 2017-09-01 2017-06-07 /pmc/articles/PMC5619129/ /pubmed/28989620 http://dx.doi.org/10.1039/c7sc02150j Text en This journal is © The Royal Society of Chemistry 2017 http://creativecommons.org/licenses/by-nc/3.0/ This is an Open Access article distributed under the terms of the Creative Commons Attribution-NonCommercial 3.0 Unported License (http://creativecommons.org/licenses/by-nc/3.0/) which permits unrestricted non-commercial use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Chemistry
Bai, Yusong
Rawson, Jeff
Roget, Sean A.
Olivier, Jean-Hubert
Lin, Jiaxing
Zhang, Peng
Beratan, David N.
Therien, Michael J.
Controlling the excited-state dynamics of low band gap, near-infrared absorbers via proquinoidal unit electronic structural modulation
title Controlling the excited-state dynamics of low band gap, near-infrared absorbers via proquinoidal unit electronic structural modulation
title_full Controlling the excited-state dynamics of low band gap, near-infrared absorbers via proquinoidal unit electronic structural modulation
title_fullStr Controlling the excited-state dynamics of low band gap, near-infrared absorbers via proquinoidal unit electronic structural modulation
title_full_unstemmed Controlling the excited-state dynamics of low band gap, near-infrared absorbers via proquinoidal unit electronic structural modulation
title_short Controlling the excited-state dynamics of low band gap, near-infrared absorbers via proquinoidal unit electronic structural modulation
title_sort controlling the excited-state dynamics of low band gap, near-infrared absorbers via proquinoidal unit electronic structural modulation
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5619129/
https://www.ncbi.nlm.nih.gov/pubmed/28989620
http://dx.doi.org/10.1039/c7sc02150j
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