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Formation of Domains and magnetic Reversal in the canted Antiferromagnet α-Fe<sub>2</sub>O<sub>3</sub>

ORAL

Abstract

Antiferromagnets are at the forefront of research in spintronics and demonstrate high potential for revolutionizing memory technologies. Here, we study the canted antiferromagnet α-Fe2O3 using imaging based on x-ray magnetic linear dichroism (XMLD) and spin Hall magnetoresistance (SMR) measurements in α-Fe2O3/Pt Hall cross devices.

The domain structure forms a multi-domain state at zero field and depends strongly on the magnetic field. Combining angle-dependent SMR and XMLD measurements, we can find, that the internal destressing fields driving the formation of domains do not follow the hexagonal crystal symmetry of α-Fe2O3. Furthermore, the canting induces a weak ferromagnetic moment which lifts the degeneracy of the sublattices and consequently the orientation of the Néel vector with respect to the field resulting in hysteresis. The irreversibility upon switching the polarity of the field elucidates the formation of antiferromagnetic as well as ferromagnetic domain walls at low magnetic fields. These insights serve as a foundation for further studies of electrical and optical manipulation of the domain structure of canted antiferromagnets.

Presenters

  • Angela Wittmann

    Massachusetts Institute of Technology MIT, Johannes Gutenberg University Mainz

Authors

  • Angela Wittmann

    Massachusetts Institute of Technology MIT, Johannes Gutenberg University Mainz

  • Kai Litzius

    Massachusetts Institute of Technology MIT, Max-Planck-Institute for Intelligent Systems, 70569 Stuttgart, Germany

  • Alexandra Churikova

    Massachusetts Institute of Technology MIT

  • Larry Scipioni

    PVD Products

  • Adam Shepard

    PVD Products

  • Ty Newhouse-Illige

    PVD Products

  • James Greer

    PVD Products

  • Norman O Birge

    Michigan State University

  • Geoffrey S Beach

    Massachusetts Institute of Technology MIT, Massachusetts Institute of Technology