Publication | Open Access
Time-resolved near-edge X-ray absorption fine structure of pyrazine from electronic structure and nuclear wave packet dynamics simulations
50
Citations
62
References
2019
Year
As a demonstration of the analysis of the electronic structure and the nuclear dynamics from time-resolved near-edge X-ray absorption fine structure (TR-NEXAFS), we present the TR-NEXAFS spectra of pyrazine following the excitation to the <sup>1</sup>B<sub>2u</sub>(ππ<sup>*</sup>) state. The spectra are calculated combining the frozen-core/core-valence separated equation-of-motion coupled cluster singles and doubles approach for the spectral signatures and the multiconfiguration time-dependent Hartree method for the wave packet propagation. The population decay from the <sup>1</sup>B<sub>2u</sub>(ππ<sup>*</sup>) state to the <sup>1</sup>B<sub>3u</sub>(nπ<sup>*</sup>) and <sup>1</sup>A<sub>u</sub>(nπ<sup>*</sup>) states, followed by oscillatory flow of population between the <sup>1</sup>B<sub>3u</sub>(nπ<sup>*</sup>) and <sup>1</sup>A<sub>u</sub>(nπ<sup>*</sup>) states, is interpreted by means of visualization of the potential energy curves and the reduced nuclear densities. By examining the electronic structure of the three valence-excited states and the final core-excited states, we observe that the population dynamics is explicitly reflected in the TR-NEXAFS spectra, especially when the heteroatoms are selected as the X-ray absorption sites. This work illustrates the feasibility of extracting fine details of molecular photophysical processes from TR-NEXAFS spectra by using currently available theoretical methods.
| Year | Citations | |
|---|---|---|
Page 1
Page 1