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Excited-State Barrier Controls E → Z Photoisomerization in p-Hydroxycinnamate Biochromophores

[Image: see text] Molecules based on the deprotonated p-hydroxycinnamate moiety are widespread in nature, including serving as UV filters in the leaves of plants and as the biochromophore in photoactive yellow protein. The photophysical behavior of these chromophores is centered around a rapid E → Z...

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Autores principales: Ashworth, Eleanor K., Coughlan, Neville J. A., Hopkins, W. Scott, Bieske, Evan J., Bull, James N.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2022
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9549896/
https://www.ncbi.nlm.nih.gov/pubmed/36149746
http://dx.doi.org/10.1021/acs.jpclett.2c02613
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author Ashworth, Eleanor K.
Coughlan, Neville J. A.
Hopkins, W. Scott
Bieske, Evan J.
Bull, James N.
author_facet Ashworth, Eleanor K.
Coughlan, Neville J. A.
Hopkins, W. Scott
Bieske, Evan J.
Bull, James N.
author_sort Ashworth, Eleanor K.
collection PubMed
description [Image: see text] Molecules based on the deprotonated p-hydroxycinnamate moiety are widespread in nature, including serving as UV filters in the leaves of plants and as the biochromophore in photoactive yellow protein. The photophysical behavior of these chromophores is centered around a rapid E → Z photoisomerization by passage through a conical intersection seam. Here, we use photoisomerization and photodissociation action spectroscopies with deprotonated 4-hydroxybenzal acetone (pCK(–)) to characterize a wavelength-dependent bifurcation between electron autodetachment (spontaneous ejection of an electron from the S(1) state because it is situated in the detachment continuum) and E → Z photoisomerization. While autodetachment occurs across the entire S(1)(ππ*) band (370–480 nm), E → Z photoisomerization occurs only over a blue portion of the band (370–430 nm). No E → Z photoisomerization is observed when the ketone functional group in pCK(–) is replaced with an ester or carboxylic acid. The wavelength-dependent bifurcation is consistent with potential energy surface calculations showing that a barrier separates the Franck–Condon region from the E → Z isomerizing conical intersection. The barrier height, which is substantially higher in the gas phase than in solution, depends on the functional group and governs whether E → Z photoisomerization occurs more rapidly than autodetachment.
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spelling pubmed-95498962022-10-11 Excited-State Barrier Controls E → Z Photoisomerization in p-Hydroxycinnamate Biochromophores Ashworth, Eleanor K. Coughlan, Neville J. A. Hopkins, W. Scott Bieske, Evan J. Bull, James N. J Phys Chem Lett [Image: see text] Molecules based on the deprotonated p-hydroxycinnamate moiety are widespread in nature, including serving as UV filters in the leaves of plants and as the biochromophore in photoactive yellow protein. The photophysical behavior of these chromophores is centered around a rapid E → Z photoisomerization by passage through a conical intersection seam. Here, we use photoisomerization and photodissociation action spectroscopies with deprotonated 4-hydroxybenzal acetone (pCK(–)) to characterize a wavelength-dependent bifurcation between electron autodetachment (spontaneous ejection of an electron from the S(1) state because it is situated in the detachment continuum) and E → Z photoisomerization. While autodetachment occurs across the entire S(1)(ππ*) band (370–480 nm), E → Z photoisomerization occurs only over a blue portion of the band (370–430 nm). No E → Z photoisomerization is observed when the ketone functional group in pCK(–) is replaced with an ester or carboxylic acid. The wavelength-dependent bifurcation is consistent with potential energy surface calculations showing that a barrier separates the Franck–Condon region from the E → Z isomerizing conical intersection. The barrier height, which is substantially higher in the gas phase than in solution, depends on the functional group and governs whether E → Z photoisomerization occurs more rapidly than autodetachment. American Chemical Society 2022-09-23 2022-10-06 /pmc/articles/PMC9549896/ /pubmed/36149746 http://dx.doi.org/10.1021/acs.jpclett.2c02613 Text en © 2022 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Ashworth, Eleanor K.
Coughlan, Neville J. A.
Hopkins, W. Scott
Bieske, Evan J.
Bull, James N.
Excited-State Barrier Controls E → Z Photoisomerization in p-Hydroxycinnamate Biochromophores
title Excited-State Barrier Controls E → Z Photoisomerization in p-Hydroxycinnamate Biochromophores
title_full Excited-State Barrier Controls E → Z Photoisomerization in p-Hydroxycinnamate Biochromophores
title_fullStr Excited-State Barrier Controls E → Z Photoisomerization in p-Hydroxycinnamate Biochromophores
title_full_unstemmed Excited-State Barrier Controls E → Z Photoisomerization in p-Hydroxycinnamate Biochromophores
title_short Excited-State Barrier Controls E → Z Photoisomerization in p-Hydroxycinnamate Biochromophores
title_sort excited-state barrier controls e → z photoisomerization in p-hydroxycinnamate biochromophores
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9549896/
https://www.ncbi.nlm.nih.gov/pubmed/36149746
http://dx.doi.org/10.1021/acs.jpclett.2c02613
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