Universal scaled Higgs-mass gap for the bilayer Heisenberg model in the ordered phase
arXiv:1601.04772 · doi:10.1140/epjb/e2016-60885-0
Abstract
The spectral properties for the bilayer quantum Heisenberg model were investigated with the numerical diagonalization method. In the ordered phase, there appears the massive Higgs excitation embedded in the continuum of the Goldstone excitations. Recently, it was claimed that the properly scaled Higgs mass is a universal constant in proximity to the critical point. Diagonalizing the finite-size cluster with spins, we calculated the dynamical scalar susceptibility , which is rather insensitive to the Goldstone mode. A finite-size-scaling analysis of is made, and the universal (properly scaled) Higgs mass is estimated.
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Cited by in corpus (4)
- The nonperturbative functional renormalization group and its applications
- Spectrum of the Wilson-Fisher conformal field theory on the torus
- Criticality of the low-frequency conductivity for the bilayer quantum Heisenberg model
- Operator product expansion coefficients from the nonperturbative functional renormalization group