Deciphering the internal conversion and triplet formation in thymine via time-resolved multi-center X-ray photoelectron spectroscopy
Xiaojun Wang, Woojin Park, Dennis Mayer, Fabiano Lever, Giovanni Cirmi, Michele Di Fraia, Benjamin Erk, Marion Kuhlmann, Zane Phelps, Oksana Plekan, Federico Pressacco, Sebastian Schulz, Cheol Ho Choi, Miquel Huix-Rotllant, Markus Gühr
Abstract
The photostability of DNA nucleobases relies on ultrafast nonradiative relaxation following ultraviolet excitation. In thymine, the competition between internal conversion (IC) and intersystem crossing (ISC) determines the balance between ultrafast energy dissipation and potentially long-lived photochemistry. However, the precise molecular mechanisms linking early singlet-state electronic and structural evolution to the formation of long-lived triplet dark states remain unresolved. Here, we investigate the gas-phase photodynamics of thymine using time-resolved multi-center X-ray photoelectron spectroscopy (tr-mc-XPS) supported by state-of-the-art ab initio quantum calculations. By simultaneously probing multiple carbon 1s core levels, we track site-specific electronic and nuclear dynamics. We discover that the long-lived dark state is not initially a pure triplet; rather, it exists as a mixture of singlet and triplet states for the first 240 ps before transitioning fully to the 3ππ* state. On the femtosecond timescale, we resolve atom-specific vibrational coherence at 730 cm-1 (a ring-breathing mode with a period of 46 fs) that survives the initial 1ππ* to 1nπ* IC. Furthermore, we identify a critical dual role for the methyl group (C9H3). During singlet relaxation, the methyl group acts as an inertia spectator, and its mass hinders direct internal conversion to the ground state. Upon 3ππ* state formation, however, state-dependent hyperconjugation couples the methyl group to the pyrimidine ring, turning it into a highly sensitive electronic reporter of ISC. These findings establish tr-mc-XPS as a powerful approach for disentangling the complex, multi-timescale photodynamics governing nucleobase stability.
Create a lesson
Related papers
Nonadiabatic Quantum Dynamics of Hexatriene via the Extended Hubbard-Peierls Model and Time-Dependent DMRG
Timothy N. Georges, Darren J. Valentine, William Barford
PyCDFT: A Python-scriptable library for analytical evaluation of orbital conceptual density (matrix) functional theory
Bin Wang, Paul Geerlings, Paul W. Ayers et al.
State-selective molecular orientation by vibrational Autler-Townes adiabatic passage
Meng-Yi Yu, Ya-Nan Lv, Cun-Feng Cheng et al.
Relativistic Hirshfeld atoms in a molecule: An information-theoretic view, with application to Drude oscillator dispersion models
Keegan Paice, John M. Herbert
Numerical integration of intracule pair densities with optimized multicenter grids
Markel Ylla, Jesus M. Ugalde, Eduard Matito et al.
SupraTITO: Transferable Generative Molecular Dynamics for Supramolecular Systems
Weilong Chen, Nuno Costa, Julija Zavadlav