Correlated partial disorder in a weakly frustrated quantum antiferromagnet
Abstract
Partial disorder --the microscopic coexistence of long-range magnetic order and disorder-- is a rare phenomenon, that has been experimental and theoretically reported in some Ising- or easy plane-spin systems, driven by entropic effects at finite temperatures. Here, we present an analytical and numerical analysis of the Heisenberg antiferromagnet on the -distorted triangular lattice, which shows that its quantum ground state has partial disorder in the weakly frustrated regime. This state has a 180 N\'eel ordered honeycomb subsystem, coexisting with disordered spins at the hexagon center sites. These central spins are ferromagnetically aligned at short distances, as a consequence of a Casimir-like effect originated by the zero-point quantum fluctuations of the honeycomb lattice.
Cite
@article{arxiv.1804.06720,
title = {Correlated partial disorder in a weakly frustrated quantum antiferromagnet},
author = {M. G. Gonzalez and F. T. Lisandrini and G. G. Blesio and A. E. Trumper and C. J. Gazza and L. O. Manuel},
journal= {arXiv preprint arXiv:1804.06720},
year = {2019}
}
Comments
6 pages + Supplemental Material. Final version to appear in Physical Review Letters