Van Hove singularity in the magnon spectrum of the antiferromagnetic quantum honeycomb lattice

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Main Authors: Sala, G., Stone, M. B., Rai, Binod K., May, A. F., Laurell, Pontus, Garlea, V. O., Butch, N. P., Lumsden, M. D., Ehlers, G., Pokharel, G., Mandrus, D., Parker, D. S., Okamoto, S., Halász, Gábor B., Christianson, A. D.
Format: Preprint
Published: 2020
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author Sala, G.
Stone, M. B.
Rai, Binod K.
May, A. F.
Laurell, Pontus
Garlea, V. O.
Butch, N. P.
Lumsden, M. D.
Ehlers, G.
Pokharel, G.
Mandrus, D.
Parker, D. S.
Okamoto, S.
Halász, Gábor B.
Christianson, A. D.
author_facet Sala, G.
Stone, M. B.
Rai, Binod K.
May, A. F.
Laurell, Pontus
Garlea, V. O.
Butch, N. P.
Lumsden, M. D.
Ehlers, G.
Pokharel, G.
Mandrus, D.
Parker, D. S.
Okamoto, S.
Halász, Gábor B.
Christianson, A. D.
contents The magnetic excitation spectrum of the quantum magnet YbCl$_3$ is studied with inelastic neutron scattering. The spectrum exhibits an unusually sharp feature within a broad continuum, as well as conventional spin waves. By including both transverse and longitudinal channels of the neutron response, linear spin wave theory with a single Heisenberg interaction on the honeycomb lattice reproduces all of the key features in the spectrum. In particular, the broad continuum corresponds to a two-magnon contribution from the longitudinal channel, while the sharp feature within this continuum is identified as a Van Hove singularity in the joint density of states, which indicates the two-dimensional nature of the two-magnon continuum. We term these singularities magneto-caustic features in analogy with caustic features in ray optics where focused envelopes of light are generated when light passes through or reflects from curved or distorted surfaces. The experimental demonstration of a sharp Van Hove singularity in a two-magnon continuum is important because analogous features in potential two-spinon continua could distinguish quantum spin liquids from merely disordered systems. These results establish YbCl$_3$ as a nearly ideal two-dimensional honeycomb lattice material hosting strong quantum effects in the unfrustrated limit.
format Preprint
id arxiv_https___arxiv_org_abs_2003_01754
institution arXiv
publishDate 2020
record_format arxiv
spellingShingle Van Hove singularity in the magnon spectrum of the antiferromagnetic quantum honeycomb lattice
Sala, G.
Stone, M. B.
Rai, Binod K.
May, A. F.
Laurell, Pontus
Garlea, V. O.
Butch, N. P.
Lumsden, M. D.
Ehlers, G.
Pokharel, G.
Mandrus, D.
Parker, D. S.
Okamoto, S.
Halász, Gábor B.
Christianson, A. D.
Strongly Correlated Electrons
The magnetic excitation spectrum of the quantum magnet YbCl$_3$ is studied with inelastic neutron scattering. The spectrum exhibits an unusually sharp feature within a broad continuum, as well as conventional spin waves. By including both transverse and longitudinal channels of the neutron response, linear spin wave theory with a single Heisenberg interaction on the honeycomb lattice reproduces all of the key features in the spectrum. In particular, the broad continuum corresponds to a two-magnon contribution from the longitudinal channel, while the sharp feature within this continuum is identified as a Van Hove singularity in the joint density of states, which indicates the two-dimensional nature of the two-magnon continuum. We term these singularities magneto-caustic features in analogy with caustic features in ray optics where focused envelopes of light are generated when light passes through or reflects from curved or distorted surfaces. The experimental demonstration of a sharp Van Hove singularity in a two-magnon continuum is important because analogous features in potential two-spinon continua could distinguish quantum spin liquids from merely disordered systems. These results establish YbCl$_3$ as a nearly ideal two-dimensional honeycomb lattice material hosting strong quantum effects in the unfrustrated limit.
title Van Hove singularity in the magnon spectrum of the antiferromagnetic quantum honeycomb lattice
topic Strongly Correlated Electrons
url https://arxiv.org/abs/2003.01754