Order-by-disorder effects in antiferromagnets on face-centered cubic lattice
arXiv:1605.02208 · doi:10.1016/j.jmmm.2016.04.052
Abstract
We discuss the role of quantum fluctuations in Heisenberg antiferromagnets on face-centered cubic lattice with small dipolar interaction in which the next-nearest-neighbor exchange coupling dominates over the nearest-neighbor one. It is well known that a collinear magnetic structure which contains (111) ferromagnetic planes arranged antiferromagnetically along one of the space diagonals of the cube is stabilized in this model via order-by-disorder mechanism. On the mean-field level, the dipolar interaction forces spins to lie within (111) planes. By considering 1/S - corrections to the ground state energy, we demonstrate that quantum fluctuations lead to an anisotropy within (111) planes favoring three equivalent directions for the staggered magnetization (e.g., , , and directions for (111) plane). Such in-plane anisotropy was obtained experimentally in related materials MnO, -MnS, -MnSe, EuTe, and EuSe. We find that the order-by-disorder mechanism can contribute significantly to the value of the in-plane anisotropy in EuTe. Magnon spectrum is also derived in the first order in 1/S.
9 pages, 1 colour figures
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Cited by in corpus (5)
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- Ground state selection by magnon interactions in the fcc antiferromagnet
- Spin-flop transition accompanied with changing the type of magnetic ordering
- Microscopic Origin of Reduced Magnetic Order in a Frustrated Metal