English

Magnetoelectric domain wall dynamics and its implications for magnetoelectric memory

Materials Science 2016-04-05 v2

Abstract

Domain wall dynamics in a magnetoelectric antiferromagnet is analyzed, and its implications for magnetoelectric memory applications are discussed. Cr2_2O3_3 is used in the estimates of the materials parameters. It is found that the domain wall mobility has a maximum as a function of the electric field due to the gyrotropic coupling induced by it. In Cr2_2O3_3 the maximal mobility of 0.1 m/(s×\timesOe) is reached at E0.06E\approx0.06 V/nm. Fields of this order may be too weak to overcome the intrinsic depinning field, which is estimated for B-doped Cr2_2O3_3. These major drawbacks for device implementation can be overcome by applying a small in-plane shear strain, which blocks the domain wall precession. Domain wall mobility of about 0.7 m/(s×\timesOe) can then be achieved at E=0.2E=0.2 V/nm. A split-gate scheme is proposed for the domain-wall controlled bit element; its extension to multiple-gate linear arrays can offer advantages in memory density, programmability, and logic functionality.

Keywords

Cite

@article{arxiv.1601.02471,
  title  = {Magnetoelectric domain wall dynamics and its implications for magnetoelectric memory},
  author = {K. D. Belashchenko and O. Tchernyshyov and Alexey A. Kovalev and O. A. Tretiakov},
  journal= {arXiv preprint arXiv:1601.02471},
  year   = {2016}
}

Comments

5 pages, 2 figures, revised and corrected version, accepted in Applied Physics Letters

R2 v1 2026-06-22T12:26:51.254Z