Stable Asymmetric Magnetization Reversal in Epitaxial Co(001)/CoO(001) Bilayer

Fuente: arXiv
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Hauptverfasser: Gaerner, Maik, Bünte, Judith, Peters, Finn, Ennen, Inga, Tetzlaff, Hermann, Fiedler, Johannes, Blachowicz, Tomasz, Caron, Luana, Hütten, Andreas, Ehrmann, Andrea, Wortmann, Martin
Format: Preprint
Veröffentlicht: 2026
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author Gaerner, Maik
Bünte, Judith
Peters, Finn
Ennen, Inga
Tetzlaff, Hermann
Fiedler, Johannes
Blachowicz, Tomasz
Caron, Luana
Hütten, Andreas
Ehrmann, Andrea
Wortmann, Martin
author_facet Gaerner, Maik
Bünte, Judith
Peters, Finn
Ennen, Inga
Tetzlaff, Hermann
Fiedler, Johannes
Blachowicz, Tomasz
Caron, Luana
Hütten, Andreas
Ehrmann, Andrea
Wortmann, Martin
contents The exchange bias (EB) in ferromagnetic/antiferromagnetic (FM/AFM) bilayer systems causes a shift of the magnetic hysteresis curve after field cooling through the Néel temperature of the AFM. In some cases, this shift is accompanied by an asymmetry between ascending and descending branches. In the past, this asymmetric magnetization reversal has been studied in different bilayer systems, including polycrystalline Co/CoO thin films. Here we investigate the asymmetric magnetization reversal in an epitaxial fcc-Co(001)/CoO(001) thin film grown on MgO(001) by molecular beam epitaxy at varying temperatures up to room temperature after field cooling along the easy and the hard axes. Room temperature measurements of the longitudinal and transverse magneto-optic Kerr effect show different magnetization reversal processes via stable intermediate states for different angles between external magnetic field and magnetic easy axes. Once the sample is cooled below the blocking temperature, a pronounced asymmetric magnetization reversal can be observed. We show that in contrast to polycrystalline bilayers, the loop asymmetry stays constant after multiple training cycles and that the magnitude of the asymmetry is directly correlated with the magnitude of the EB.
format Preprint
id arxiv_https___arxiv_org_abs_2603_28424
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Stable Asymmetric Magnetization Reversal in Epitaxial Co(001)/CoO(001) Bilayer
Gaerner, Maik
Bünte, Judith
Peters, Finn
Ennen, Inga
Tetzlaff, Hermann
Fiedler, Johannes
Blachowicz, Tomasz
Caron, Luana
Hütten, Andreas
Ehrmann, Andrea
Wortmann, Martin
Materials Science
Other Condensed Matter
The exchange bias (EB) in ferromagnetic/antiferromagnetic (FM/AFM) bilayer systems causes a shift of the magnetic hysteresis curve after field cooling through the Néel temperature of the AFM. In some cases, this shift is accompanied by an asymmetry between ascending and descending branches. In the past, this asymmetric magnetization reversal has been studied in different bilayer systems, including polycrystalline Co/CoO thin films. Here we investigate the asymmetric magnetization reversal in an epitaxial fcc-Co(001)/CoO(001) thin film grown on MgO(001) by molecular beam epitaxy at varying temperatures up to room temperature after field cooling along the easy and the hard axes. Room temperature measurements of the longitudinal and transverse magneto-optic Kerr effect show different magnetization reversal processes via stable intermediate states for different angles between external magnetic field and magnetic easy axes. Once the sample is cooled below the blocking temperature, a pronounced asymmetric magnetization reversal can be observed. We show that in contrast to polycrystalline bilayers, the loop asymmetry stays constant after multiple training cycles and that the magnitude of the asymmetry is directly correlated with the magnitude of the EB.
title Stable Asymmetric Magnetization Reversal in Epitaxial Co(001)/CoO(001) Bilayer
topic Materials Science
Other Condensed Matter
url https://arxiv.org/abs/2603.28424