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research article

Dynamical structure factors and excitation modes of the bilayer Heisenberg model

Lohöfer, M.
•
Coletta, T.
•
Joshi, D. G.
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2015
Physical Review B

Using quantum Monte Carlo simulations along with higher-order spin-wave theory, bond-operator and strong-coupling expansions, we analyze the dynamical spin structure factor of the spin-half Heisenberg model on the square-lattice bilayer. We identify distinct contributions from the low-energy Goldstone modes in the magnetically ordered phase and the gapped triplon modes in the quantum disordered phase. In the antisymmetric (with respect to layer inversion) channel, the dynamical spin structure factor exhibits a continuous evolution of spectral features across the quantum phase transition, connecting the two types of modes. Instead, in the symmetric channel, we find a depletion of the spectral weight when moving from the ordered to the disordered phase. While the dynamical spin structure factor does not exhibit a well-defined distinct contribution from the amplitude (or Higgs) mode in the ordered phase, we identify an only marginally damped amplitude mode in the dynamical singlet structure factor, obtained from interlayer bond correlations, in the vicinity of the quantum critical point. These findings provide quantitative information in direct relation to possible neutron or light scattering experiments in a fundamental two-dimensional quantum-critical spin system.

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Type
research article
DOI
10.1103/PhysRevB.92.245137
Author(s)
Lohöfer, M.
Coletta, T.
Joshi, D. G.
Assaad, F. F.
Vojta, M.
Wessel, S.
Mila, F.  
Date Issued

2015

Published in
Physical Review B
Volume

92

Issue

24

Article Number

245137

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
CTMC  
Available on Infoscience
June 19, 2019
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/158327
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