Spin-induced multiferroicity in the binary perovskite manganite Mn 2 O 3

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 b...

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Veröffentlicht in:Nature communications 2018-07, Vol.9 (1), p.2996
Hauptverfasser: Cong, Junzhuang, Zhai, Kun, Chai, Yisheng, Shang, Dashan, Khalyavin, Dmitry D, Johnson, Roger D, Kozlenko, Denis P, Kichanov, Sergey E, Abakumov, Artem M, Tsirlin, Alexander A, Dubrovinsky, Leonid, Xu, Xueli, Sheng, Zhigao, Ovsyannikov, Sergey V, Sun, Young
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Sprache:eng
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Zusammenfassung: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 Mn O 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 Mn O 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.
ISSN:2041-1723
DOI:10.1038/s41467-018-05296-0