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Phys. Rev. B 68, 064411 (2003) [12 pages]

Theory of the [111] magnetization plateau in spin ice

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R. Moessner1 and S. L. Sondhi2
1Laboratoire de Physique Théorique de l’Ecole Normale Supérieure, CNRS-UMR8549, Paris, France
2Department of Physics, Princeton University, Princeton, New Jersey 08544, USA

Received 11 March 2003; published 12 August 2003

The application of a magnetic field along the [111] direction in the spin ice compounds leads to two magnetization plateaux, in the first of which the ground-state entropy is reduced but still remains extensive. We observe that under reasonable assumptions, the remaining degrees of freedom in the low field plateau live on decoupled kagome planes, and can be mapped to hard core dimers on a honeycomb lattice. The resulting two-dimensional state is critical, and we have obtained its residual entropy—in good agreement with recent experiments—the equal time spin correlations as well as a theory for the dynamical spin correlations. Small tilts of the field are predicted to lead a vanishing of the entropy and the termination of the critical phase by a Kasteleyn transition characterized by highly anisotropic scaling. We discuss the thermally excited defects that terminate the plateau at either end, among them an exotic string defect which restores three dimensionality.

© 2003 The American Physical Society

URL:
http://link.aps.org/doi/10.1103/PhysRevB.68.064411
DOI:
10.1103/PhysRevB.68.064411
PACS:
75.50.Ee, 75.40.Cx, 75.40.Gb