Hydrogen response to high-density dislocations in bulk perovskite oxide SrTiO3

Fuente: arXiv
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Auteurs principaux: Fang, Xufei, Dörrer, Lars, Korneychuk, Svetlana, Vrellou, Maria, Welle, Alexander, Wagner, Stefan, Pundt, Astrid, Schmidt, Harald, Kirchlechner, Christoph
Format: Preprint
Publié: 2025
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author Fang, Xufei
Dörrer, Lars
Korneychuk, Svetlana
Vrellou, Maria
Welle, Alexander
Wagner, Stefan
Pundt, Astrid
Schmidt, Harald
Kirchlechner, Christoph
author_facet Fang, Xufei
Dörrer, Lars
Korneychuk, Svetlana
Vrellou, Maria
Welle, Alexander
Wagner, Stefan
Pundt, Astrid
Schmidt, Harald
Kirchlechner, Christoph
contents Hydrogen plays an increasingly important role in green energy technologies. For instance, proton-conducting oxides with high performance for fuel cell components or electrolysers need to be developed. However, this requires a fundamental understanding of hydrogen-defects interactions. While point defects and grain boundaries in oxides have been extensively studied, the role of dislocations as line defects remains less understood, primarily due to the challenge for effective dislocation engineering in brittle oxides. In this work, we demonstrate the impact of dislocations in bulk single-crystal perovskite oxide SrTiO3 on hydrogen uptake and diffusion using deuterium as tracer. Dislocations with a high density up to ~10 to the power of 14 per square meter were mechanically introduced at room temperature. Exposing this dislocation-rich and the reference regions (with a dislocation density of ~10 to the power of 10 per square meter) to deuterium at 400 °C for 1h, followed by secondary ion mass spectrometry measurements, we observed a ~100 times increase in deuterium incorporation in the dislocation-rich region. The result suggests that dislocations in oxides can act as an effective reservoir for deuterium. This proof-of-concept brings new insights into the emerging hydrogen-dislocation interactions in functional oxides.
format Preprint
id arxiv_https___arxiv_org_abs_2506_12354
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Hydrogen response to high-density dislocations in bulk perovskite oxide SrTiO3
Fang, Xufei
Dörrer, Lars
Korneychuk, Svetlana
Vrellou, Maria
Welle, Alexander
Wagner, Stefan
Pundt, Astrid
Schmidt, Harald
Kirchlechner, Christoph
Materials Science
Hydrogen plays an increasingly important role in green energy technologies. For instance, proton-conducting oxides with high performance for fuel cell components or electrolysers need to be developed. However, this requires a fundamental understanding of hydrogen-defects interactions. While point defects and grain boundaries in oxides have been extensively studied, the role of dislocations as line defects remains less understood, primarily due to the challenge for effective dislocation engineering in brittle oxides. In this work, we demonstrate the impact of dislocations in bulk single-crystal perovskite oxide SrTiO3 on hydrogen uptake and diffusion using deuterium as tracer. Dislocations with a high density up to ~10 to the power of 14 per square meter were mechanically introduced at room temperature. Exposing this dislocation-rich and the reference regions (with a dislocation density of ~10 to the power of 10 per square meter) to deuterium at 400 °C for 1h, followed by secondary ion mass spectrometry measurements, we observed a ~100 times increase in deuterium incorporation in the dislocation-rich region. The result suggests that dislocations in oxides can act as an effective reservoir for deuterium. This proof-of-concept brings new insights into the emerging hydrogen-dislocation interactions in functional oxides.
title Hydrogen response to high-density dislocations in bulk perovskite oxide SrTiO3
topic Materials Science
url https://arxiv.org/abs/2506.12354