Resolving the Valence of Iron Oxides by Resonant Photoemission Spectroscopy

Fuente: arXiv
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Main Authors: Chen, Hao, Liu, Yun, Zhang, Hexin, Zhao, Shengdi, Nemsak, Slavomir, Liu, Haishan, Salmeron, Miquel
Format: Preprint
Published: 2024
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author Chen, Hao
Liu, Yun
Zhang, Hexin
Zhao, Shengdi
Nemsak, Slavomir
Liu, Haishan
Salmeron, Miquel
author_facet Chen, Hao
Liu, Yun
Zhang, Hexin
Zhao, Shengdi
Nemsak, Slavomir
Liu, Haishan
Salmeron, Miquel
contents Precisely determining the oxidation states of metal cations within variable-valence transition metal oxides remains a significant challenge, yet it is crucial for understanding and predicting the properties of these technologically important materials. Iron oxides, in particular, exhibit a remarkable diversity of electronic structures due to the variable valence states of iron (Fe2+ and Fe3+), however, quantitative analysis using conventional X-ray photoelectron spectroscopy (XPS) is challenging because of significant overlapping of the Fe2p spectra among different oxidation states. In this study, we leverage the intriguing case of Pt supported FeO2 phase of monolayer thickness (ML) as a model system and employ Resonant Photoemission Spectroscopy (ResPES) to directly quantify the cation valence states and compositional ratios in this complex Fe oxide. Our results reveal that this ultrathin FeO2 film (Pt-O-Fe-O), contrary to the +3 valence predicted by density functional theory (DFT), consists of an equal mixture of Fe2+ and Fe3+ cations, yielding an average valence of +2.5. Structurally, FeO2 is likely derived from the Fe3O4 sublattice, featuring an octahedral Fe layer (50% Fe3+ and 50% Fe2+) bonded to upper and lower oxygen layers.
format Preprint
id arxiv_https___arxiv_org_abs_2409_15649
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Resolving the Valence of Iron Oxides by Resonant Photoemission Spectroscopy
Chen, Hao
Liu, Yun
Zhang, Hexin
Zhao, Shengdi
Nemsak, Slavomir
Liu, Haishan
Salmeron, Miquel
Materials Science
Precisely determining the oxidation states of metal cations within variable-valence transition metal oxides remains a significant challenge, yet it is crucial for understanding and predicting the properties of these technologically important materials. Iron oxides, in particular, exhibit a remarkable diversity of electronic structures due to the variable valence states of iron (Fe2+ and Fe3+), however, quantitative analysis using conventional X-ray photoelectron spectroscopy (XPS) is challenging because of significant overlapping of the Fe2p spectra among different oxidation states. In this study, we leverage the intriguing case of Pt supported FeO2 phase of monolayer thickness (ML) as a model system and employ Resonant Photoemission Spectroscopy (ResPES) to directly quantify the cation valence states and compositional ratios in this complex Fe oxide. Our results reveal that this ultrathin FeO2 film (Pt-O-Fe-O), contrary to the +3 valence predicted by density functional theory (DFT), consists of an equal mixture of Fe2+ and Fe3+ cations, yielding an average valence of +2.5. Structurally, FeO2 is likely derived from the Fe3O4 sublattice, featuring an octahedral Fe layer (50% Fe3+ and 50% Fe2+) bonded to upper and lower oxygen layers.
title Resolving the Valence of Iron Oxides by Resonant Photoemission Spectroscopy
topic Materials Science
url https://arxiv.org/abs/2409.15649