Influence of Hydrogen-Incorporation on the Bulk Electronic Structure and Chemical Bonding in Palladium

Fuente: arXiv
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Main Authors: Bannenberg, L. J., García-Martínez, F., Lömker, P., Engel, R. Y., Schlueter, C., Schreuders, H., Navarathna, A., Ratcliff, L. E., Regoutz, A.
Format: Preprint
Published: 2025
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author Bannenberg, L. J.
García-Martínez, F.
Lömker, P.
Engel, R. Y.
Schlueter, C.
Schreuders, H.
Navarathna, A.
Ratcliff, L. E.
Regoutz, A.
author_facet Bannenberg, L. J.
García-Martínez, F.
Lömker, P.
Engel, R. Y.
Schlueter, C.
Schreuders, H.
Navarathna, A.
Ratcliff, L. E.
Regoutz, A.
contents Palladium hydride is a model system for studying metal-hydrogen interactions. Yet, its bulk electronic structure has proven difficult to directly probe, with most studies to date limited to surface-sensitive photoelectron spectroscopy approaches. This work reports the first in-situ ambient-pressure hard X-ray photoelectron spectroscopy (AP-HAXPES) study of hydrogen incorporation in Pd thin films, providing direct access to bulk chemical and electronic information at elevated hydrogen pressures. Structural characterisation by in-situ X-ray diffraction and neutron reflectometry under comparable conditions establishes a direct correlation between hydrogen loading, lattice expansion, and electronic modifications. Comparison with density functional theory (DFT) reveals how hydrogen stoichiometry and site occupancy govern the density of occupied states near the Fermi level. These results resolve long-standing questions regarding PdH and establish AP-HAXPES as a powerful tool for probing the bulk electronic structure of metal hydrides under realistic conditions.
format Preprint
id arxiv_https___arxiv_org_abs_2510_27294
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Influence of Hydrogen-Incorporation on the Bulk Electronic Structure and Chemical Bonding in Palladium
Bannenberg, L. J.
García-Martínez, F.
Lömker, P.
Engel, R. Y.
Schlueter, C.
Schreuders, H.
Navarathna, A.
Ratcliff, L. E.
Regoutz, A.
Materials Science
Palladium hydride is a model system for studying metal-hydrogen interactions. Yet, its bulk electronic structure has proven difficult to directly probe, with most studies to date limited to surface-sensitive photoelectron spectroscopy approaches. This work reports the first in-situ ambient-pressure hard X-ray photoelectron spectroscopy (AP-HAXPES) study of hydrogen incorporation in Pd thin films, providing direct access to bulk chemical and electronic information at elevated hydrogen pressures. Structural characterisation by in-situ X-ray diffraction and neutron reflectometry under comparable conditions establishes a direct correlation between hydrogen loading, lattice expansion, and electronic modifications. Comparison with density functional theory (DFT) reveals how hydrogen stoichiometry and site occupancy govern the density of occupied states near the Fermi level. These results resolve long-standing questions regarding PdH and establish AP-HAXPES as a powerful tool for probing the bulk electronic structure of metal hydrides under realistic conditions.
title Influence of Hydrogen-Incorporation on the Bulk Electronic Structure and Chemical Bonding in Palladium
topic Materials Science
url https://arxiv.org/abs/2510.27294