English

The DNA Nucleobase Thymine in Motion - Intersystem Crossing Simulated with Surface Hopping

Chemical Physics 2016-10-17 v1

Abstract

We report ab initio excited-state dynamics simulations on isolated thymine to investigate the mechanism of intersystem crossing, based on CASSCF potential energy surfaces and the \textsc{Sharc} surface hopping method. We show that even though S2S1S_2 \rightarrow S_1 internal conversion is not described accurately with CASSCF, intersystem crossing can be correctly simulated. Intersystem crossing in thymine occurs from the S1S_1 (1nπ^1n\pi^*) minimum, via a nearby crossing with T2T_2 (3ππ^3\pi\pi^*). The system further relaxes via ultrafast internal conversion in the triplet manifold to the T1T_1 (3ππ^3\pi\pi^*) state. The simulations reveal that, once the system is trapped in the 1nπ^1n\pi^* minimum, intersystem crossing might proceed with a time constant of 1~ps. Furthermore, the change of the system's electronic state is accompanied respectively by elongation/shortening of specific bonds, which could thus be used as indicators to identify which state is populated in the dynamics.

Cite

@article{arxiv.1610.04436,
  title  = {The DNA Nucleobase Thymine in Motion - Intersystem Crossing Simulated with Surface Hopping},
  author = {Sebastian Mai and Martin Richter and Philipp Marquetand and Leticia González},
  journal= {arXiv preprint arXiv:1610.04436},
  year   = {2016}
}
R2 v1 2026-06-22T16:20:48.264Z