paper

Reduced crystal symmetry as origin of the ferroelectric polarization within the incommensurate magnetic phase of TbMn2O5

arXiv:2109.05164 · doi:10.1103/PhysRevB.105.214413

Abstract

The precise crystal symmetry and hence the emergence of the electric polarization still remains an open question in the multiferroic materials MnO ( = rare-earth, Bi, Y). While previous diffraction studies have indicated that MnO possesses the centro-symmetric space group P, an atomic displacement allowing for the electric polarization would require a non-centrosymmetric crystal symmetry. Our single crystal neutron diffraction experiments on TbMnO provide direct evidence of a reduced crystallographic symmetry already above the magnetic and ferroelectric phase transitions and a change in magnetic order upon entering the ferroelectric phase. This is indicated through the presence of additional nuclear Bragg reflections that are otherwise forbidden for the space group P but are in good agreement with the polar space group P. It implies that the exchange-striction, which arises from a symmetric spin coupling, is the dominating mechanism for the generation of the electric polarization in the commensurate magnetic phase of TbMnO. Furthermore, the commensurate magnetic reflections are in accordance with a quartile step spin-spiral along the -axis. Therefore, the antisymmetric exchange via the inverse Dzyaloshinskii-Moriya interaction contributes as well and becomes the leading term in the low temperature incommensurate spin-spiral magnetic phase. These new findings provide important information for the understanding of the complex interplay between the magnetic and the structural order throughout the MnO series of type-II multiferroics.

27 pages, 6 figures, Supplemental Material attached

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