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arXiv · 2503.18723

Unraveling the relaxation dynamics of Uracil: insights from time-resolved X-ray photoelectron spectroscopy

Abstract

We report a study of the electronic and nuclear relaxation dynamics of the photoexcited RNA base uracil in the gas phase, using time-resolved core level photoelectron spectroscopy together with high level calculations. The dynamics was investigated by trajectory surface-hopping calculations, and the core ionization energies were calculated for geometries sampled from these. The molecule was excited by a UV laser and dynamics was probed on the oxygen, nitrogen and carbon site by core electron spectroscopy. Assuming a particular model, we find that the initially excited $S_2(\pi\pi^*)$ state of uracil decays with a time constant of 17 $\pm$ 4 fs to the ground state directly, or to the $S_1(n\pi^*)$ state via internal conversion. We find no evidence that the $S_1(n\pi^*)$ state decays to the ground state by internal conversion; instead it decays to triplet states with a time constant of 1.6 $\pm$ 0.4 ps. Oscillations of the $S_1(n\pi^*)$ state O 1s intensity as a function of time correlate with those of calculated C4=O8 and C5=C6 bond lengths, which undergo a sudden expansion following the initial $\pi \to \pi^*$ excitation. We also observe oscillations in the mean energy of the main line (core ionized ionic state), which we tentatively assign to dynamics of the hot ground state. Our calculations support our interpretation of the data, and provide detailed insight into the relaxation processes of uracil.

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Davide Faccialà, Matteo Bonanomi, Bruno Nunes Cabral Tenorio, Lorenzo Avaldi, Paola Bolognesi, Carlo Callegari, Marcello Coreno, Sonia Coriani, Piero Decleva, Michele Devetta, Nađa Došlić, Alberto De Fanis, Michele Di Fraia, Fabiano Lever, Tommaso Mazza, Michael Meyer, Terry Mullins, Yevheniy Ovcharenko, Nitish Pal, Maria Novella Piancastelli, Robert Richter, Daniel E. Rivas, Marin Sapunar, Björn Senfftleben, Sergey Usenko, Caterina Vozzi, Markus Gühr, Kevin C. Prince, Oksana Plekan. 2025-03-24. Unraveling the relaxation dynamics of Uracil: insights from time-resolved X-ray photoelectron spectroscopy. https://doi.org/10.1021/jacs.5c04874

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