2019/03/31 by Long Zhang, Lin Zhang, Ying Hu +2
Physics and Astronomy · #Dephasing #Magnetic field #Non-equilibrium thermodynamics #Physics #Quantum #Quantum and electron transport phenomena #Quantum many-body systems #Quantum mechanics #Scaling #Statistical physics #Topological Materials and Phenomena #Topology (electrical circuits) #cond-mat.quant-gas #cond-mat.str-el #quant-ph
paper · pdf · doi:10.1103/physrevb.103.224308
published as Phys. Rev. B 103, 224308 (2021) · 5+12 pages; 4+3 figures. Beyond mean-field results are added, and references are updated
openalex created_date 2019/04/01 · arxiv created 2019/07/31 · openalex publication_date 2021/06/21 · arxiv updated 2021/06/22 · openalex updated_date 2026/08/05
Quenching a quantum system involves three basic ingredients: the initial phase, the postquench target phase, and quantum dynamics, which may carry the information of the former two. Here we propose a dynamical theory, based on an interaction quench, to characterize both the equilibrium symmetry-breaking order and topological phases by nonequilibrium correlated quantum dynamics. We illustrate the theory with the Haldane-Hubbard model, which is quenched from an initial correlated magnetic phase to a topologically nontrivial regime. We show that the quench dynamics exhibit profound universal behaviors on the so-called band-inversion surfaces (BISs), from which both the topological phase in the weakly interacting regime and the correlated magnetic phase in the strongly interacting regime can be extracted. In particular, the topology is characterized by dynamical topological patterns emerging on BISs, which are robust against interaction-induced dephasing and heating; the symmetry-breaking order can be read out from a universal dynamical scaling behavior, which is valid beyond the mean-field theory. This work uncovers the first paradigm of nonequilibrium characterization of equilibrium symmetry-breaking and topological phases.