Field-tuned quantum renormalization of spin dynamics in the honeycomb lattice Heisenberg antiferromagnet YbCl<sub>3</sub>
ORAL
Abstract
The honeycomb lattice Heisenberg model is uncomplicated: only nearest neighbor Heisenberg interactions are considered; there is no frustration, and the ground state at T=0 is the Néel state. The experimental realization of the honeycomb lattice Heisenberg model discussed here is the rare earth halide YbCl3. We present a comprehensive study of the spin excitation spectrum of YbCl3 using inelastic neutron scattering measurements under applied magnetic fields in tandem with linear and nonlinear spin wave theory calculations. By examining the spin excitation spectrum above the saturation field where the physical behavior is explicitly classical and linear spin-wave theory is essentially exact, we accurately determine the dominant nearest-neighbor Heisenberg interaction. Below the saturation field, we reveal a field-dependent energy renormalization of the entire magnetic spectrum -- the sharp spin-wave modes as well as the multimagnon continuum. This renormalization is a quantum effect that can be accurately captured by the first 1/S correction in nonlinear spin-wave theory. Furthermore, we find that the application of a magnetic field induces a qualitatively new sharp feature inside the multimagnon continuum -- the lower edge of a specific two-magnon component -- which demonstrates that structures within the multimagnon continuum can occur over a wide experimental parameter space and can be used as an additional means of identifying quantum phenomena.
*This work was supported by the U.S. Department of Energy, Office of Science, Basic Energy Sciences, Materials Sciences and Engineering Division. This research used resources at the Spallation Neutron Source and the High Flux Isotope Reactor, Department of Energy (DOE) Office of Science User Facilities operated by Oak Ridge National Laboratory (ORNL).
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Publication:G. Sala, M. B. Stone, Gabor B. Halasz, M. D. Lumsden, A. F. May, D. M. Pajerowski, S. Ohira-Kawamura, K. Kaneko, D. G. Mazzone, G. Simutis, J. Lass, Yasuyuki Kato, Seung-Hwan Do, J. Y. Y. Lin, and A. D. Christianson, Field-tuned quantum renormalization of spin dynamics in the honeycomb lattice Heisenberg antiferromagnet YbCl3, Communications Physics 6, 234 (2023).
Presenters
Andy Christianson
Oak Ridge National Laboratory
Authors
Andy Christianson
Oak Ridge National Laboratory
Gabriele Sala
Oak Ridge National Laboratory
Matthew B Stone
Oak Ridge National Laboratory
Gabor Halasz
Oak Ridge National Lab
Mark D Lumsden
Oak Ridge National Lab
Andrew F May
Oak Ridge National Lab
Daniel M Pajerowski
Oak Ridge National Lab
Oak Ridge National Laboratory
Seiko O Ohira-Kawamura
MLF J-PARC
Materials & Life Science Division, Japan Atomic Energy Agency
Koji Kaneko
Materials & Life Science Division, Japan Atomic Energy Agency
Yasuyuki Kato
Department of Applied Physics, The University of Tokyo
Univ. of Tokyo
Univ of Tokyo
Dept. of Appl. Phys., Univ of Tokyo
Seunghwan Do
Oak Ridge National Laboratory
Jiao Lin
Oak Ridge National Laboratory
Jiao Lin
Oak Ridge National Laboratory
Daniel Mazzone
Paul Scherrer Institute
Gediminas Simutis
Paul Scherrer Institute
Jakob Lass
Laboratory for Neutron Scattering and Imaging, Paul Scherrer Institute