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Impact of growth conditions on magnetic anisotropy and magnon Hanle effect in α-Fe<sub>2</sub>O<sub>3</sub>

ORAL

Abstract

The antiferromagnetic insulator α-Fe2O3 (hematite), commonly used in spintronics and magnonics, undergoes a spin-reorientation transition (Morin transition) at around 263 K. This Morin transition is often absent in thin films, limiting their potential for applications. To tune the Morin transition temperature, we explore different growth conditions and their impact on the magnetic anisotropy of α-Fe2O3 films. We compare the structural, magnetic, and magnon-based spin transport properties of α-Fe2O3 films with different thicknesses grown via pulsed laser deposition in molecular and additional atomic oxygen atmospheres. Notably, α-Fe2O3 films grown with additional atomic oxygen exhibit a finite Morin transition even down to thicknesses of 19 nm. Furthermore, we observe a clear impact of the growth conditions on the magnon Hanle effect, i.e., the precession of magnon pseudospin around its equilibrium pseudofield in easy-plane antiferromagnets. In all-electrical magnon transport measurements, we detect distinct changes in the magnon spin signal for α-Fe2O3 films grown with atomic oxygen, including an enhanced maximum of the magnon Hanle signal and a shift of the magnon Hanle peak to lower magnetic field values. This suggests altered magnetic anisotropy due to an increased oxygen content, offering insights for tuning the magnetic properties of α-Fe2O3 films [1].

[1] M. Scheufele et al., APL Mater. 11, 091115 (2023).

Presenters

  • Monika Scheufele

    Walther-Meißner-Institut, Bayerische Akademie der Wissenschaften

Authors

  • Monika Scheufele

    Walther-Meißner-Institut, Bayerische Akademie der Wissenschaften

  • Janine Gückelhorn

    Walther-Meißner-Institut, Bayerische Akademie der Wissenschaften

  • Matthias Opel

    Walther-Meißner-Institut, Bayerische Akademie der Wissenschaften

  • Akashdeep Kamra

    Condensed Matter Physics Center (IFIMAC) and Departamento de Física Teórica de la Materia Condensada, Universidad Autónoma de Madrid, Rheinland-Pfälzische Technische Universität (RPTU), Kaiserslautern-Landau, Kaiserslautern, Germany.

  • Hans Huebl

    Walther-Meißner-Institut, Bayerische Akademie der Wissenschaften, Walther-Meissner-Institute

  • Rudolf Gross

    Walther-Meißner-Institut, Bayerische Akademie der Wissenschaften, Walther-Meissner-Institute, Walther-Meißner-Institut, Walther-Meißner-Institut, Technical University Munich, Munich Center for Quantum Science and Technology, Walther-Meißner-Institut; Technical University of Munich; Munich Center for Quantum Science and Technologies

  • Stephan Geprägs

    Walther-Meissner-Institute, Walther-Meißner-Institut, Bayerische Akademie der Wissenschaften

  • Matthias K Althammer

    Walther-Meißner-Institut, Bayerische Akademie der Wissenschaften