Near-surface Defects Break Symmetry in Water Adsorption on CeO$_{2-x}$(111)

Fuente: arXiv
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Autori principali: Custance, Oscar, Lastre, Manuel González, Kim, Kyungmin, Fernandez-Villanueva, Estefanía, Pou, Pablo, Abe, Masayuki, Sepehri-Amin, Hossein, Kawai, Shigeki, Ganduglia-Pirovano, M. Verónica, Pérez, Rubén
Natura: Preprint
Pubblicazione: 2025
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author Custance, Oscar
Lastre, Manuel González
Kim, Kyungmin
Fernandez-Villanueva, Estefanía
Pou, Pablo
Abe, Masayuki
Sepehri-Amin, Hossein
Kawai, Shigeki
Ganduglia-Pirovano, M. Verónica
Pérez, Rubén
author_facet Custance, Oscar
Lastre, Manuel González
Kim, Kyungmin
Fernandez-Villanueva, Estefanía
Pou, Pablo
Abe, Masayuki
Sepehri-Amin, Hossein
Kawai, Shigeki
Ganduglia-Pirovano, M. Verónica
Pérez, Rubén
contents Water interactions with oxygen-deficient cerium dioxide (CeO$_2$) surfaces are central to hydrogen production and catalytic redox reactions, but the atomic-scale details of how defects influence adsorption and reactivity remain elusive. Here, we unveil how water adsorbs on partially reduced CeO$_{2-x}$(111) using atomic force microscopy (AFM) with chemically sensitive, oxygen-terminated probes, combined with first-principles calculations. Our AFM imaging reveals water molecules as sharp, asymmetric boomerang-like features radically departing from the symmetric triangular motifs previously attributed to molecular water. Strikingly, these features localize near subsurface defects. While the experiments are carried out at cryogenic temperature, water was dosed at room temperature, capturing configurations relevant to initial adsorption events in catalytic processes. Density functional theory identifies Ce$^{3+}$ sites adjacent to subsurface vacancies as the thermodynamically favored adsorption sites, where defect-induced symmetry breaking governs water orientation. Force spectroscopy and simulations further distinguish Ce$^{3+}$ from Ce$^{4+}$ centers through their unique interaction signatures. By resolving how subsurface defects control water adsorption at the atomic scale, this work demonstrates the power of chemically selective AFM for probing site-specific reactivity in oxide catalysts, laying the groundwork for direct investigations of complex systems such as single-atom catalysts, metal-support interfaces, and defect-engineered oxides.
format Preprint
id arxiv_https___arxiv_org_abs_2506_20680
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Near-surface Defects Break Symmetry in Water Adsorption on CeO$_{2-x}$(111)
Custance, Oscar
Lastre, Manuel González
Kim, Kyungmin
Fernandez-Villanueva, Estefanía
Pou, Pablo
Abe, Masayuki
Sepehri-Amin, Hossein
Kawai, Shigeki
Ganduglia-Pirovano, M. Verónica
Pérez, Rubén
Materials Science
Mesoscale and Nanoscale Physics
Other Condensed Matter
Atomic and Molecular Clusters
Chemical Physics
Water interactions with oxygen-deficient cerium dioxide (CeO$_2$) surfaces are central to hydrogen production and catalytic redox reactions, but the atomic-scale details of how defects influence adsorption and reactivity remain elusive. Here, we unveil how water adsorbs on partially reduced CeO$_{2-x}$(111) using atomic force microscopy (AFM) with chemically sensitive, oxygen-terminated probes, combined with first-principles calculations. Our AFM imaging reveals water molecules as sharp, asymmetric boomerang-like features radically departing from the symmetric triangular motifs previously attributed to molecular water. Strikingly, these features localize near subsurface defects. While the experiments are carried out at cryogenic temperature, water was dosed at room temperature, capturing configurations relevant to initial adsorption events in catalytic processes. Density functional theory identifies Ce$^{3+}$ sites adjacent to subsurface vacancies as the thermodynamically favored adsorption sites, where defect-induced symmetry breaking governs water orientation. Force spectroscopy and simulations further distinguish Ce$^{3+}$ from Ce$^{4+}$ centers through their unique interaction signatures. By resolving how subsurface defects control water adsorption at the atomic scale, this work demonstrates the power of chemically selective AFM for probing site-specific reactivity in oxide catalysts, laying the groundwork for direct investigations of complex systems such as single-atom catalysts, metal-support interfaces, and defect-engineered oxides.
title Near-surface Defects Break Symmetry in Water Adsorption on CeO$_{2-x}$(111)
topic Materials Science
Mesoscale and Nanoscale Physics
Other Condensed Matter
Atomic and Molecular Clusters
Chemical Physics
url https://arxiv.org/abs/2506.20680