Modeling and Physics of Multiferroic Perovskite Manganites

Моделирование и физика мультиферроичных перовскитных манганитов
Masahito Mochizuki
2024-09-13

R MnO3 (rare-earth manganites)magnetoelectric couplingmicroscopic theoretical modelmultiferroic perovskite manganitesspin-cycloid multiferroicity
A new type of multiferroicity was experimentally discovered in 2003 in a perovskite manganite TbMnO$_3$ where its ferroelectricity is induced by cycloidally ordered Mn spins. Susequently, such spin-cycloid multiferroic phase was also discovered in $R$MnO$_3$ with other rare-earth ions $R$=Dy, Eu$_{1-x}$Y$_x$, Tb$_{1-x}$Gd$_x$, etc. In this class of materials, the magnetism and ferroelectricity are inseparably coupled, and resulting strong magnetoelectric coupling enables us to control/manipulate the electricity (magnetism) by magnetic (electric) fields. Moreover, many interesting magnetoelectric phenomena due to their cross correlation have been discovered. In this article, we discuss a microscopic theoretical model for $R$MnO$_3$ constructed by taking into account their precise electronic and lattice structures and overview the theoretical works based on this model which elucidated rich magnetoelectric phenomena of $R$MnO$_3$. The perovskite manganites are not only the first-discovered spin-spiral multiferroic materials but also a typical class of materials that exhibits most of the magnetoelectric phenomena manifested in many other multiferroics. Therefore, the comprehensive understanding of $R$MnO$_3$ directly leads to the clarification of universal physics of magnetoelectric phenomena in multiferroic materials.
1
A microscopic theoretical model that incorporates precise electronic and lattice structures of R MnO3 explains the rich magnetoelectric phenomena observed experimentally.
2
Comprehensive understanding of R MnO3 provides clarification of universal magnetoelectric physics relevant to many other multiferroic materials.
3
Magnetism and ferroelectricity in R MnO3 are inseparably coupled, producing strong magnetoelectric coupling that allows control of electricity by magnetic fields and vice versa.
4
TbMnO3 (and related R MnO3) exhibits a new type of multiferroicity where ferroelectricity is induced by cycloidally ordered Mn spins.
5
The spin-cycloid multiferroic phase appears across R MnO3 with various rare-earth ions (Dy, Eu1-xYx, Tb1-xGdx, etc.), showing generality in this material class.

Perovskite manganites R MnO3 (spin-spiral multiferroic materials, e.g., TbMnO3 and related R=Dy, Eu1-xYx, Tb1-xGdx)

Microscopic modeling and underlying physics of magnetoelectric coupling and spin-cycloid–induced ferroelectricity in R MnO3, including electronic and lattice structure effects and resulting magnetoelectric phenomena

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2024-09-13
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Masahito Mochizuki
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