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Proof of the elusive high-temperature incommensurate phase in CuO by spherical neutron polarimetry
Author(s) -
N. Qureshi,
E. Ressouche,
A. A. Mukhin,
M. Gospodinov,
V. Skumryev
Publication year - 2020
Publication title -
science advances
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 5.928
H-Index - 146
ISSN - 2375-2548
DOI - 10.1126/sciadv.aay7661
Subject(s) - multiferroics , condensed matter physics , neutron diffraction , orthorhombic crystal system , dipole , phase (matter) , neutron , phase transition , universality (dynamical systems) , magnetic moment , materials science , physics , dielectric , ferroelectricity , diffraction , optics , quantum mechanics
CuO is the only known binary multiferroic compound, and due to its high transition temperature into the multiferroic state, it has been extensively studied. In comparison to other prototype multiferroics, the nature and even the existence of the high-temperature incommensurate paraelectric phase (AF3) were strongly debated-both experimentally and theoretically-since it is stable for only a few tenths of a kelvin just below the Néel temperature. Until now, there is no proof by neutron diffraction techniques owing to its very small ordered Cu magnetic moment. Here, we demonstrate the potential of spherical neutron polarimetry, first, in detecting magnetic structure changes, which are not or weakly manifest in the peak intensity and, second, in deducing the spin arrangement of the so far hypothetic AF3 phase. Our findings suggest two coexisting spin density waves emerging from an accidental degeneracy of the respective states implying a delicate energy balance in the spin Hamiltonian.

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