Abstract
Single-particle methods based on Kohn-Sham unoccupied states to describe near-edge X-ray absorption (XAS) spectra are routinely applied for the description of K-edge spectra, as there is no complication due to spin-orbit (SO) coupling. L- and M-edge spectra are often addressed via variants of time-dependent density functional theory (TDDFT) based on SO calculations. Here, we present a computationally efficient implementation based on single-particle calculations with core holes within the frozen-core approximation. Combined with a semiempirical energy shift and a fixed SO splitting for each core level, this allows for a computationally cheap, while overall accurate, prediction of experimental spectra on the absolute energy scale. The spectra are compared to about 40 times slower linear-response TDDFT calculations for molecules and show similar or even better matches with experiment. An exception is multiplet effects that we analyze in detail and show that they cannot be covered by a single-particle approximation. A similar picture emerges for solids, where good qualitative and sometimes even quantitative agreement to experimental XAS and electron energy-loss spectra is achieved.
| Original language | English |
|---|---|
| Article number | 084111 |
| Number of pages | 14 |
| Journal | Journal of Chemical Physics |
| Volume | 163 |
| Issue number | 8 |
| DOIs | |
| Publication status | Published - 28 Aug 2025 |
Austrian Fields of Science 2012
- 103018 Materials physics
- 103006 Chemical physics
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