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Journal of the American Chemical Society· 2026Q1

Predicting Core-Level X-ray Photoemission Spectra of Oxide Surfaces from First-Principles─A Case Study for SnO2

Wenxuan Cai, Stefan Kucharski, Chris Blackman, Juhan Matthias Kahk et al.

Short summary

A first-principles Z+1 method accurately predicts X-ray Photoemission Spectra (XPS) for SnO2 surfaces, distinguishing between stoichiometric, reduced, and adsorbate-covered states.

AI-generated from the title and abstract; the full text is not read.

Key points

  • A first-principles Z+1 method is presented to predict core-level XPS spectra of oxide surfaces.
  • The method accurately models different SnO2 (110) surface configurations: stoichiometric, various vacancies, and adsorbate-covered surfaces.
  • Predicted spectra show distinct features for stoichiometric (low binding energy feature from bridging oxygens) versus fully reduced surfaces (highly symmetric peak).
  • Spectra for reduced surfaces with OH and O2 adsorbates exhibit additional higher binding energy features.
  • The predicted spectra align well with experimental results for reduced surfaces exposed to oxygen.

AI-generated from the title and abstract; the full text is not read.

Abstract

Abstract X-ray photoemission spectroscopy (XPS) is a powerful technique to gain insight into the chemical properties of oxide surfaces. However, the interpretation of XPS spectra is notoriously difficult as realistic surfaces contain different terminations, reconstructions, adsorbates, and defects, all of which leave (potentially overlapping) spectroscopic fingerprints. To address this challenge, we present a first-principles approach based on the Z+1 method that allows us to predict XPS spectra of oxide surfaces which can directly be compared to experimental measurements. We present results for different SnO2 (110) surfaces: the stoichiometric surface, surfaces with different types of vacancies (one of which is the fully reduced surface) and also the fully reduced surface with adsorbed OH and O2 molecules. For these systems, we calculate the O 1s core–electron binding energies of all oxygen atoms and then use this to predict the XPS spectrum. We find that the fully reduced surface gives rise to a highly symmetric peak shape in agreement with recent XPS measurements. In contrast, the spectrum of the stoichiometric surface exhibits an additional feature at low binding energies caused by the bridging oxygen atoms at the surface. For the reduced surface with OH and O2 adsorbates, the spectrum exhibits additional features at higher binding energies. The predicted spectra are in good agreement with experimental results obtained for reduced surfaces that have been exposed to oxygen gas. The presented method is general and can be straightforwardly applied to other surfaces.

The authors' abstract, as published at the source. Journal of the American Chemical Society, 2026 · DOI ↗

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Field: Surfaces, Coatings and Films

Surfaces, Coatings and FilmsMaterials Science