Emergent hydrodynamic response and dynamical backreaction: Magnon bound-state propagation in a Bose-Hubbard fluid
Andrés N. Cáliz, Arnau Riera, Enrique Rico, João Barata, Marcin Płodzień
Abstract
We study the nonequilibrium response of a one-dimensional Bose-Hubbard medium to a two-magnon bound state propagating along an attractive XXZ chain. A Holstein-type displacement coupling makes the magnon density act both as a local chemical-potential perturbation and as a source of bosons. We derive a long-wavelength hydrodynamic description of the density and phase fluctuations and test it against matrix-product-state simulations of the full coupled dynamics. The theory predicts a comoving near-field deformation together with retarded density waves confined to a sound cone. In the Mott regime, the deformation remains localized around the moving pair. In the compressible regime, two counterpropagating fronts detach and approach the semiclassical sound velocity, recovered from the equilibrium density with no fitted parameters. The coupling also induces a dynamical backreaction that slows the bound state and broadens its magnon-density profile. The comparison delimits where hydrodynamics stays quantitative once the probe reacts back on the medium.
Create a lesson
Related papers
Cavity-induced intertwining of density and pairing order in a degenerate Fermi gas
Sankalp Sharma, Farokh Mivehvar, Helmut Ritsch et al.
Geometry-Driven Suppression of Fermionic Pairing on a Spherical Surface
Lorenzo Frigato, Andrea Tononi, Luca Salasnich
Course on two-dimensional quantum gases
Hélène Perrin
Stable three-dimensional lattice solitons in spin-orbit-coupled Bose-Einstein condensates
Liangwei Zeng, Boris A. Malomed, Yaroslav V. Kartashov et al.
Weak ferromagnetism in the square-lattice Heisenberg J1-J2-J2 model with easy-axis single-ion anisotropy
Bin-Zhou Mi, Qiang Gu
Few-body bound states in the anyon-Hubbard model
Isaac Tesfaye, Christina Mascherbauer, Joyce Kwan et al.