Hydride-induced palladium self-diffusion and surface restructuring on Pd(111)

Abstract Reaction conditions significantly affect the electrocatalyst surface but are often overlooked when evaluating catalytic performance. Pd forms hydride phases during proton reduction under cathodic potentials, which can lead to surface reconstructions and defect formation. However, the influence of hydride formation on Pd atom migration remains underexplored. Here, we show, using density functional theory and molecular dynamics simulations, the thermodynamic and hydride conditions associated with surface reconstruction in PdH x /Pd(111) systems during the initial stages of hydride formation. Surface Pourbaix diagrams show the predicted stability of PdH x /Pd phases under reaction conditions, while calculated Pd migration barriers decrease with hydride sublayers and become negligible at high hydrogen concentrations. Atomistic simulations further show that at least three subsurface hydride layers are necessary for observable reconstruction, dislocation and defect formation, during which Pd atoms predominantly migrate outward through strain relaxation while hydrogen atoms locally adjust to the reconstructed lattice. Overall, our results suggest an interplay between hydride formation and atom mobility, highlighting the potential importance of dynamic surface transformations when designing and evaluating Pd-based electroreduction catalysts.

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Journal
Nature Communications
Published
2026-09-15
DOI
https://doi.org/10.1038/s41467-026-77704-9
Primary Topic
Electrocatalysts for Energy Conversion
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article
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Hydride-induced palladium self-diffusion and surface restructuring on Pd(111)

Sousa Javan Nikkhah, Matthias Vandichel, Muhammad Umer, Raju Lipin et al.
Nature Communications
Electrocatalysts for Energy Conversion
article

Hydride-induced palladium self-diffusion and surface restructuring on Pd(111)

Sousa Javan Nikkhah, Matthias Vandichel, Muhammad Umer, Raju Lipin, Apinya Ngoipala
article en

Abstract

Abstract Reaction conditions significantly affect the electrocatalyst surface but are often overlooked when evaluating catalytic performance. Pd forms hydride phases during proton reduction under cathodic potentials, which can lead to surface reconstructions and defect formation. However, the influence of hydride formation on Pd atom migration remains underexplored. Here, we show, using density functional theory and molecular dynamics simulations, the thermodynamic and hydride conditions associated with surface reconstruction in PdH x /Pd(111) systems during the initial stages of hydride formation. Surface Pourbaix diagrams show the predicted stability of PdH x /Pd phases under reaction conditions, while calculated Pd migration barriers decrease with hydride sublayers and become negligible at high hydrogen concentrations. Atomistic simulations further show that at least three subsurface hydride layers are necessary for observable reconstruction, dislocation and defect formation, during which Pd atoms predominantly migrate outward through strain relaxation while hydrogen atoms locally adjust to the reconstructed lattice. Overall, our results suggest an interplay between hydride formation and atom mobility, highlighting the potential importance of dynamic surface transformations when designing and evaluating Pd-based electroreduction catalysts.

Nature Communications
National University of Ireland, Maynooth (IE), University of Limerick (IE)
Reduced inequalities
Openalex Percentile: Top 29%
Electrocatalysts for Energy Conversion
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Hydride-induced palladium self-diffusion and surface restructuring on Pd(111) — Sousa Javan Nikkhah, Matthias Vandichel, et al. · Nature Communications (2026) | TGRS Research Map | TGRS