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Excited state dynamics of protonated dopamine: hydration and conformation effects
Author(s) -
Keisuke Hirata,
Ken-Ichi Kasai,
Koki Yoshizawa,
Gilles Grégoire,
Shunichi Ishiuchi,
Masaaki Fujii
Publication year - 2022
Publication title -
physical chemistry chemical physics
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.053
H-Index - 239
eISSN - 1463-9084
pISSN - 1463-9076
DOI - 10.1039/d2cp00543c
Subject(s) - protonation , excited state , conformational isomerism , chemistry , dopamine , catechol , photochemistry , molecule , spectroscopy , chemical physics , ion , atomic physics , physics , organic chemistry , quantum mechanics , neuroscience , biology
Electronic and vibrational spectroscopy in a cryogenic ion trap has been applied to protonated dopamine water clusters and assigned with the help of quantum chemistry calculations performed in the ground and electronic excited states. A dramatic hydration effect is observed when dopamine is solvated by three water molecules. The broad electronic spectra recorded for the bare and small water clusters containing protonated dopamine turn to sharp, well-resolved vibronic transitions in the 1-3 complex. This reflects the change induced by hydration in the photodynamics of protonated dopamine which is initially controlled by an excited state proton transfer (ESPT) reaction from the ammonium group toward the catechol ring. Interestingly, conformer selectivity is revealed in the 1-3 complex which shows two low lying energy conformers for which the ESPT reaction is prevented or not depending on the H-bond network formed between the dopamine and water molecules.

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