Benchmarking Core-Level X-ray Absorption with MRSF-TDDFT, RASPT2, and Stochastic GAS Using the XABOOM Set

Abstract Rapid advances in X-ray free-electron laser facilities are producing X-ray absorption spectra (XAS) with unprecedented detail, creating a pressing need for theoretical methods that are both accurate and computationally efficient to interpret subtle spectral features. In this study, we benchmark two cost-effective electronic-structure approaches for an accurate description of XAS spectra: mixed-reference spin-flip time-dependent density-functional theory (MRSF-TDDFT) and single- and (extended) multistate restricted active-space perturbation theory (SS/(X)MS-RASPT2). We apply these methods to the near-edge X-ray absorption fine structure (NEXAFS) of small and medium-sized organic molecules from the XABOOM test set [J. Chem. Theory Comput. 17, 1618–1637 (2021)]. We show that MRSF-TDDFT and SS/(X)MSRASPT2 yield average errors below 0.5 eV for the lowest bright transitions compared with available gas-phase experimental K-edge spectra and reproduce both excitation energies and relative intensities across the full preionization region with excellent agreement. Furthermore, we introduce the Stochastic Generalized Active Space (S-GAS) method as a high-level tool to simulate XAS spectra and apply it to a subset of the XABOOM data set. In addition to providing accurate spectra, the S-GAS method serves as a benchmark for assessing the performance of the more approximate electronic-structure approaches. Taken together, these methods offer a robust framework for simulating XAS spectra, allowing us to systematically analyze the influence of orbital relaxation, core-valence separation, basis-set size, configuration space restrictions, relativistic effects, and vibrational zero-point energy. These findings provide practical guidelines for achieving high accuracy at reduced computational cost and for enabling more reliable interpretation of experimental NEXAFS features.

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Journal
Journal of Chemical Theory and Computation
Published
2026-09-11
DOI
https://doi.org/10.1021/acs.jctc.6c00965
Primary Topic
Advanced X-ray Imaging Techniques
Type
article
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article

Benchmarking Core-Level X-ray Absorption with MRSF-TDDFT, RASPT2, and Stochastic GAS Using the XABOOM Set

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Advanced X-ray Imaging Techniques
article

Benchmarking Core-Level X-ray Absorption with MRSF-TDDFT, RASPT2, and Stochastic GAS Using the XABOOM Set

Cheol Ho Choi, Giovanni Li Manni, Francesco Segatta, Luca Bonfirraro, Artur Nenov, Marc Alías‐Rodríguez, Marco Garavelli, Oskar Weser, Miquel Huix‐Rotllant, Woojin Park, Francesco Montorsi
article en

Abstract

Abstract Rapid advances in X-ray free-electron laser facilities are producing X-ray absorption spectra (XAS) with unprecedented detail, creating a pressing need for theoretical methods that are both accurate and computationally efficient to interpret subtle spectral features. In this study, we benchmark two cost-effective electronic-structure approaches for an accurate description of XAS spectra: mixed-reference spin-flip time-dependent density-functional theory (MRSF-TDDFT) and single- and (extended) multistate restricted active-space perturbation theory (SS/(X)MS-RASPT2). We apply these methods to the near-edge X-ray absorption fine structure (NEXAFS) of small and medium-sized organic molecules from the XABOOM test set [J. Chem. Theory Comput. 17, 1618–1637 (2021)]. We show that MRSF-TDDFT and SS/(X)MSRASPT2 yield average errors below 0.5 eV for the lowest bright transitions compared with available gas-phase experimental K-edge spectra and reproduce both excitation energies and relative intensities across the full preionization region with excellent agreement. Furthermore, we introduce the Stochastic Generalized Active Space (S-GAS) method as a high-level tool to simulate XAS spectra and apply it to a subset of the XABOOM data set. In addition to providing accurate spectra, the S-GAS method serves as a benchmark for assessing the performance of the more approximate electronic-structure approaches. Taken together, these methods offer a robust framework for simulating XAS spectra, allowing us to systematically analyze the influence of orbital relaxation, core-valence separation, basis-set size, configuration space restrictions, relativistic effects, and vibrational zero-point energy. These findings provide practical guidelines for achieving high accuracy at reduced computational cost and for enabling more reliable interpretation of experimental NEXAFS features.

Journal of Chemical Theory and Computation
European Centre for Medium-Range Weather Forecasts (GB), Aix-Marseille Université (FR), Kyungpook National University (KR), Max Planck Institute for Solid State Research (DE), Institut de Chimie Radicalaire (FR), Kyungpook National University Medical Center (KR), Universitat Rovira i Virgili (ES), University of Bologna (IT)
Deutsche Forschungsgemeinschaft, Agence Nationale de la Recherche, National Research Foundation of Korea, Max-Planck-Gesellschaft, Chemical Sciences, Geosciences, and Biosciences Division, NextGenerationEU
Affordable and clean energy
Openalex Percentile: Top 12%
Advanced X-ray Imaging Techniques
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