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Abstract
First-principles simulations of excited-state X-ray spectra are becoming increasingly important to interpret the wealth of electronic and geometric information contained within femtosecond X-ray absorption spectra recorded at X-ray Free Electron Lasers (X-FELs). However, because the transition dipole matrix elements must be calculated between two excited states (i.e., the valence excited state and the final core excited state arising from the initial valence excited state) of very different energies, this can be challenging and time-consuming to compute. Herein using two molecules, protonated formaldimine and cyclobutanone, we assess the ability of n-electron valence-state perturbation theory (NEVPT2), equation-of-motion coupled-cluster theory (EOM-CCSD), linear-response time-dependent density functional theory (LR-TDDFT) and the maximum overlap method (MOM) to describe excited state X-ray spectra. Our study focuses in particular on the behavior of these methods away from the Franck-Condon geometry and in the vicinity of important topological features of excited-state potential energy surfaces, namely, conical intersections. We demonstrate that the primary feature of excited-state X-ray spectra is associated with the core electron filling the hole created by the initial valence excitation, a process that all of the methods can capture. Higher energy states are generally weaker, but importantly much more sensitive to the nature of the reference electronic wave function. As molecular structures evolve away from the Franck-Condon geometry, changes in the spectral shape closely follow the underlying valence excitation, highlighting the importance of accurately describing the initial valence excitation to simulate the excited-state X-ray absorption spectra.
| Original language | English |
|---|---|
| Pages (from-to) | 10826-10836 |
| Number of pages | 11 |
| Journal | The Journal of Physical Chemistry A |
| Volume | 128 |
| Issue number | 50 |
| Early online date | 4 Dec 2024 |
| DOIs | |
| Publication status | Published - 19 Dec 2024 |
Bibliographical note
Publisher Copyright:© 2024 The Authors. Published by American Chemical Society.
Research Groups and Themes
- Physical & Theoretical
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OAFI - Basile Curchod - EPSRC Programme Grant - UCL lead: A Universal Approach to Using Quantum Dynamics for Real World Problems: Applying Coherent States for MolecularDynamics Simulations (COSMOS)
Curchod, B. F. E. (Principal Investigator)
1/10/23 → 30/09/29
Project: Research
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SINDAM: 8084 - SINDAM - ERC 803718 - Basile Curchod
Curchod, B. F. E. (Principal Investigator)
1/03/22 → 31/12/24
Project: Research
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