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Unsymmetric Pentacene- and Pentacenequinone-Fused Porphyrins: Understanding the Effect of Cross- and Linear-Conjugation

[Image: see text] Unsymmetric pentacenequinone-fused (cross-conjugated) and pentacene-fused (linear-conjugated) porphyrins were designed and synthesized. The cross-conjugated (AM(1)–AM(3)) and linear-conjugated (AM(5)–AM(7)) porphyrins displayed strikingly different sets of optical and electronic pr...

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Autores principales: Moss, Austen, Nevonen, Dustin E., Hu, Yi, Nesterov, Vladimir N., Nemykin, Victor N., Wang, Hong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2022
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9955193/
https://www.ncbi.nlm.nih.gov/pubmed/36855607
http://dx.doi.org/10.1021/acsphyschemau.2c00023
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author Moss, Austen
Nevonen, Dustin E.
Hu, Yi
Nesterov, Vladimir N.
Nemykin, Victor N.
Wang, Hong
author_facet Moss, Austen
Nevonen, Dustin E.
Hu, Yi
Nesterov, Vladimir N.
Nemykin, Victor N.
Wang, Hong
author_sort Moss, Austen
collection PubMed
description [Image: see text] Unsymmetric pentacenequinone-fused (cross-conjugated) and pentacene-fused (linear-conjugated) porphyrins were designed and synthesized. The cross-conjugated (AM(1)–AM(3)) and linear-conjugated (AM(5)–AM(7)) porphyrins displayed strikingly different sets of optical and electronic properties, both of which are unusual and nontypical of porphyrins. MCD, DFT, and TDDFT calculations suggest that multiple charge transfer states exist in both π-conjugated systems, which contributes to the complex absorption and MCD spectra of these molecular systems. The general Gouterman’s four-orbital model used to explain porphyrin spectroscopy led to contradicting theoretical and experimental data, and is thus not applicable for these molecular systems. The “2 + 4” and “3 + 3” active spaces have been deduced and have proven effective to interpret the absorption and MCD spectra of the pentacenequinone-fused (cross-conjugated) and pentacene-fused (linear-conjugated) porphyrins, respectively. Spectroelectrochemistry of AM(5)–AM(7) revealed broad and intense IR absorptions in the range of 1500–2500 nm, illustrating the exceptional ability of these pentacene-fused systems to accommodate positive charges. A pronounced metal effect was observed for pentacene-fused porphyrins. While pentacene-fused Ni(II) porphyrin (AM(6)) demonstrated an abnormal ability to stabilize pentacene with a half-life of >28.3 days, the half-life of the free base and Zn(II) counterparts were normal, similar to those of pentacene analogues. This work provides important and useful information on guiding new material designs.
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spelling pubmed-99551932023-02-27 Unsymmetric Pentacene- and Pentacenequinone-Fused Porphyrins: Understanding the Effect of Cross- and Linear-Conjugation Moss, Austen Nevonen, Dustin E. Hu, Yi Nesterov, Vladimir N. Nemykin, Victor N. Wang, Hong ACS Phys Chem Au [Image: see text] Unsymmetric pentacenequinone-fused (cross-conjugated) and pentacene-fused (linear-conjugated) porphyrins were designed and synthesized. The cross-conjugated (AM(1)–AM(3)) and linear-conjugated (AM(5)–AM(7)) porphyrins displayed strikingly different sets of optical and electronic properties, both of which are unusual and nontypical of porphyrins. MCD, DFT, and TDDFT calculations suggest that multiple charge transfer states exist in both π-conjugated systems, which contributes to the complex absorption and MCD spectra of these molecular systems. The general Gouterman’s four-orbital model used to explain porphyrin spectroscopy led to contradicting theoretical and experimental data, and is thus not applicable for these molecular systems. The “2 + 4” and “3 + 3” active spaces have been deduced and have proven effective to interpret the absorption and MCD spectra of the pentacenequinone-fused (cross-conjugated) and pentacene-fused (linear-conjugated) porphyrins, respectively. Spectroelectrochemistry of AM(5)–AM(7) revealed broad and intense IR absorptions in the range of 1500–2500 nm, illustrating the exceptional ability of these pentacene-fused systems to accommodate positive charges. A pronounced metal effect was observed for pentacene-fused porphyrins. While pentacene-fused Ni(II) porphyrin (AM(6)) demonstrated an abnormal ability to stabilize pentacene with a half-life of >28.3 days, the half-life of the free base and Zn(II) counterparts were normal, similar to those of pentacene analogues. This work provides important and useful information on guiding new material designs. American Chemical Society 2022-07-29 /pmc/articles/PMC9955193/ /pubmed/36855607 http://dx.doi.org/10.1021/acsphyschemau.2c00023 Text en © 2022 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by-nc-nd/4.0/Permits non-commercial access and re-use, provided that author attribution and integrity are maintained; but does not permit creation of adaptations or other derivative works (https://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Moss, Austen
Nevonen, Dustin E.
Hu, Yi
Nesterov, Vladimir N.
Nemykin, Victor N.
Wang, Hong
Unsymmetric Pentacene- and Pentacenequinone-Fused Porphyrins: Understanding the Effect of Cross- and Linear-Conjugation
title Unsymmetric Pentacene- and Pentacenequinone-Fused Porphyrins: Understanding the Effect of Cross- and Linear-Conjugation
title_full Unsymmetric Pentacene- and Pentacenequinone-Fused Porphyrins: Understanding the Effect of Cross- and Linear-Conjugation
title_fullStr Unsymmetric Pentacene- and Pentacenequinone-Fused Porphyrins: Understanding the Effect of Cross- and Linear-Conjugation
title_full_unstemmed Unsymmetric Pentacene- and Pentacenequinone-Fused Porphyrins: Understanding the Effect of Cross- and Linear-Conjugation
title_short Unsymmetric Pentacene- and Pentacenequinone-Fused Porphyrins: Understanding the Effect of Cross- and Linear-Conjugation
title_sort unsymmetric pentacene- and pentacenequinone-fused porphyrins: understanding the effect of cross- and linear-conjugation
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9955193/
https://www.ncbi.nlm.nih.gov/pubmed/36855607
http://dx.doi.org/10.1021/acsphyschemau.2c00023
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