Dynamical detection of mean-field topological phases in an interacting Chern insulator
Wei Jia, Long Zhang, Lin Zhang, Xiong-Jun Liu

TL;DR
This paper proposes a quench dynamics scheme to detect mean-field topological phases in an interacting Chern insulator, revealing characteristic times that determine the topological phase diagram and offering a practical experimental approach.
Contribution
It introduces a novel dynamical method to identify topological phases in an interacting system using characteristic time scales from quench dynamics.
Findings
Three characteristic times are identified in the quench dynamics.
The Chern number correlates with two of these characteristic times.
The method enables experimental determination of the topological phase diagram.
Abstract
Interactions generically have important effects on the topological quantum phases. For a quantum anomalous Hall (QAH) insulator, the presence of interactions can qualitatively change the topological phase diagram which, however, is typically hard to measure in the experiment. Here we propose a novel scheme based on quench dynamics to detect the mean-field topological phase diagram of an interacting Chern insulator described by QAH-Hubbard model, with nontrivial dynamical quantum physics being uncovered. We focus on the dynamical properties of the system at a weak to intermediate Hubbard interaction which mainly induces a ferromagnetic order under the mean-field level. Remarkably, three characteristic times , , and are found in the quench dynamics. The first two capture the emergence of dynamical self-consistent particle density and dynamical topological phase transition…
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Taxonomy
TopicsTopological Materials and Phenomena · Atomic and Subatomic Physics Research · Quantum and electron transport phenomena
