Manifolds of magnetic ordered states and excitations in the almost Heisenberg pyrochlore antiferromagnet MgCr2O4
S. Gao, K. Guratinder, V. Tsurkan, A. Loidl, M. Ciomaga Hatnean, G., Balakrishnan, S. Raymond, L. Chapon, V. O. Garlea, A. T. Savici, U. Stuhr, J., S. White, M. Mansson, B. Roessli, A. Cervellino, A. Bombardi, D. Chernyshov,, T. Fennell, Ch. Ruegg, J. T. Haraldsen, O. Zaharko

TL;DR
This study investigates the complex magnetic and structural states of MgCr2O4, revealing multiple magnetic domains, spin excitations, and the influence of spin-lattice coupling on its low-temperature properties.
Contribution
It provides a detailed experimental analysis of the magnetic structure, excitations, and crystal symmetry in MgCr2O4, highlighting the effects of spin-lattice coupling and complex magnetic ordering.
Findings
Multiple magnetic domains with distinct propagation vectors
Observation of dispersive spin waves and resonance modes
Cluster-like excitations indicating localized propagating modes
Abstract
In spinels ACr2O4 (A=Mg, Zn) realisation of the classical pyrochlore Heisenberg antiferromagnet model is complicated by a strong spin-lattice coupling: the extensive degeneracy of the ground state is lifted by a magneto-structural transition at TN=12.5 K. We study the resulting low-temperature low-symmetry crystal structure by synchrotron x-ray diffraction. The consistent features of x-ray low-temperature patterns are explained by the tetragonal model of Ehrenberg et. al (Pow. Diff. 17, 230( 2002)), while other features depend on sample or cooling protocol. Complex partially ordered magnetic state is studied by neutron diffraction and spherical neutron polarimetry. Multiple magnetic domains of configuration arms of the propagation vectors k1=(1/2 1/2 0), k2=(1 0 1/2) appear. The ordered moment reaches 1.94(3) muB/Cr3+ for k1 and 2.08(3) muB/Cr3+ for k2, if equal amount of the k1 and k2…
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