Magnetic ground state and 2D behavior in pseudo-Kagome layered system Cu3Bi(SeO3)2O2Br
arXiv:1203.2782 · doi:10.1103/PhysRevB.86.144409
Abstract
Anisotropic magnetic properties of a layered kagome-like system Cu3Bi(SeO3)2O2Br have been studied by bulk magnetization and magnetic susceptibility measurements as well as powder and single-crystal neutron diffraction. At T_N = 27.4 K the system develops an alternating antiferromagnetic order of (ab) layers, which individually exhibit canted ferrimagnetic moment arrangement, resulting from the competing ferro- and antiferro-magnetic intralayer exchange interactions. A magnetic field B_C ~ 0.8 T applied along the c axis (perpendicular to the layers) triggers a metamagnetic transition, when every second layer flips, i.e., resulting in a ferrimagnetic structure. Significantly higher fields are required to rotate the ferromagnetic component towards the b axis (~7 T) or towards the a axis (~15 T). The estimates of the exchange coupling constants and features indicative of an XY character of this quasi-2D system are presented.
7 pages, 6 figures, final version
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Cited by in corpus (4)
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- Antiferroelectric instability in kagome francisites CuBi(SeO)OX (X = Cl, Br)
- THz spectroscopy in the pseudo-Kagome system Cu3Bi(SeO3)2O2Br
- Linear magnetoelastic coupling and magnetic phase diagrams of the buckled-kagomé antiferromagnet CuBi(SeO)OCl