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Updated: Mar 8, 2026

Fabrication of Spatially Confined Complex Oxides
Published on: July 1, 2013
Magnon confinement in epitaxial antiferromagnetic oxide heterostructures
Sajid Husain1,2, Maya Ramesh3, Xinyan Li4,5
1Department of Materials Science and Engineering, University of California, Berkeley, CA, USA. shusain@berkeley.edu.
None:
Magnons, the quanta of spin waves, have been extensively studied in a range of materials for spintronics, particularly for non-volatile logic-in-memory devices. Controlling magnons in conventional antiferromagnets and harnessing them in practical applications, however, remains a challenge. Here we demonstrate highly efficient magnon transport in a LaFeO3/BiFeO3/LaFeO3 all-antiferromagnetic system, which can be controlled electrically, making it highly desirable for energy-efficient computation. Leveraging spin-orbit-driven spin-charge transduction, we demonstrate that this material architecture permits magnon confinement in ultrathin antiferromagnets, enhancing the output voltage generated by magnon transport by several orders of magnitude, which provides a pathway to enable magnetoelectric memory and logic functionalities. Additionally, the non-volatility of the output voltage enables ultralow-power logic-in-memory processing, where magnonic devices can be efficiently reconfigured via electrically controlled magnon spin currents within magnetoelectric channels.
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