4.8 Article

Landau theory of topological defects in multiferroic hexagonal manganites

Journal

NATURE MATERIALS
Volume 13, Issue 1, Pages 42-49

Publisher

NATURE PUBLISHING GROUP
DOI: 10.1038/NMAT3786

Keywords

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Funding

  1. ZIAM Groningen [MSC06-20]
  2. FOM [11PR2928]
  3. International Center of Materials Research
  4. Center for Scientific Computing
  5. CNSI
  6. MRL
  7. NSF
  8. MRSEC [DMR-1121053]
  9. ETH Zurich
  10. Direct For Mathematical & Physical Scien [0843934] Funding Source: National Science Foundation
  11. Division Of Materials Research [0843934] Funding Source: National Science Foundation

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Topological defects in ordered states with spontaneously broken symmetry often have unusual physical properties, such as fractional electric charge or a quantized magnetic field flux, originating from their non-trivial topology. Coupled topological defects in systems with several coexisting orders give rise to unconventional functionalities, such as the electric-field control of magnetization in multiferroics resulting from the coupling between the ferroelectric and ferromagnetic domain walls. Hexagonal manganites provide an extra degree of freedom: in these materials, both ferroelectricity and magnetism are coupled to an additional, non-ferroelectric structural order parameter. Here we present a theoretical study of topological defects in hexagonal manganites based on Landau theory with parameters determined from first-principles calculations. We explain the observed flip of electric polarization at the boundaries of structural domains, the origin of the observed discrete vortices, and the clamping between ferroelectric and antiferromagnetic domain walls. We show that structural vortices induce magnetic ones and that, consistent with a recent experimental report, ferroelectric domain walls can carry a magnetic moment.

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