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Spin-induced multiferroicity in the binary perovskite manganite MnO. | LitMetric

AI Article Synopsis

  • - ABO perovskite oxides are being studied for their unique physical properties and potential uses in various industries.
  • - A unique binary perovskite manganite, MnO, can be created under extreme conditions and shows both magnetically driven ferroelectricity and a significant magnetoelectric effect at low temperatures.
  • - Neutron powder diffraction studies have identified complex antiferromagnetic structures in MnO, revealing the interplay of spin, charge, and orbital factors, highlighting the material's potential for advanced electric and magnetic applications.

Article Abstract

The ABO perovskite oxides exhibit a wide range of interesting physical phenomena remaining in the focus of extensive scientific investigations and various industrial applications. In order to form a perovskite structure, the cations occupying the A and B positions in the lattice, as a rule, should be different. Nevertheless, the unique binary perovskite manganite MnO containing the same element in both A and B positions can be synthesized under high-pressure high-temperature conditions. Here, we show that this material exhibits magnetically driven ferroelectricity and a pronounced magnetoelectric effect at low temperatures. Neutron powder diffraction revealed two intricate antiferromagnetic structures below 100 K, driven by a strong interplay between spin, charge, and orbital degrees of freedom. The peculiar multiferroicity in the MnO perovskite is ascribed to a combined effect involving several mechanisms. Our work demonstrates the potential of binary perovskite oxides for creating materials with highly promising electric and magnetic properties.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC6068161PMC
http://dx.doi.org/10.1038/s41467-018-05296-0DOI Listing

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