Back to Search Start Over

Fractional excitations in the square lattice quantum antiferromagnet.

Authors :
Piazza BD
Mourigal M
Christensen NB
Nilsen GJ
Tregenna-Piggott P
Perring TG
Enderle M
McMorrow DF
Ivanov DA
Rønnow HM
Source :
Nature physics [Nat Phys] 2015 Jan 01; Vol. 11 (1), pp. 62-68.
Publication Year :
2015

Abstract

Quantum magnets have occupied the fertile ground between many-body theory and low-temperature experiments on real materials since the early days of quantum mechanics. However, our understanding of even deceptively simple systems of interacting spins-1/2 is far from complete. The quantum square-lattice Heisenberg antiferromagnet (QSLHAF), for example, exhibits a striking anomaly of hitherto unknown origin in its magnetic excitation spectrum. This quantum effect manifests itself for excitations propagating with the specific wave vector ( π , 0). We use polarized neutron spectroscopy to fully characterize the magnetic fluctuations in the metal-organic compound CFTD, a known realization of the QSLHAF model. Our experiments reveal an isotropic excitation continuum at the anomaly, which we analyse theoretically using Gutzwiller-projected trial wavefunctions. The excitation continuum is accounted for by the existence of spatially-extended pairs of fractional S =1/2 quasiparticles, 2D analogues of 1D spinons. Away from the anomalous wave vector, these fractional excitations are bound and form conventional magnons. Our results establish the existence of fractional quasiparticles in the high-energy spectrum of a quasi-two-dimensional antiferromagnet, even in the absence of frustration.

Details

Language :
English
ISSN :
1745-2473
Volume :
11
Issue :
1
Database :
MEDLINE
Journal :
Nature physics
Publication Type :
Academic Journal
Accession number :
25729400
Full Text :
https://doi.org/10.1038/nphys3172