Experimental realization of the SSH4 model in ultracold atoms verifies higher-dimensional winding number via mean chiral displacement, maps the topological phase transition, and confirms edge states via quench dynamics.
Dynamical detection of topological charges
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abstract
We propose a generic scheme to characterize topological phases via detecting topological charges by quench dynamics. A topological charge is defined as the chirality of a monopole at Dirac or Weyl point of spin-orbit field, and topological phases can be classified by total charges in the region enclosed by the so-called band-inversion surfaces (BISs). We show that both the topological monopoles and BISs can be identified by non-equilibrium spin dynamics caused by a sequence of quenches. From an emergent dynamical field given by time-averaged spin textures, the topological charges, as well as the topological invariant, can be readily obtained. An explicit advantage in this scheme is that only a single spin component needs to be measured to detect all the information of the topological phase. We numerically examine two realistic models, and propose a feasible experimental setup for the measurement. This work opens a new way to dynamically classify topological phases.
fields
cond-mat.quant-gas 1years
2019 1verdicts
UNVERDICTED 1representative citing papers
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Topological characterizations of an extended Su-Schrieffer-Heeger model
Experimental realization of the SSH4 model in ultracold atoms verifies higher-dimensional winding number via mean chiral displacement, maps the topological phase transition, and confirms edge states via quench dynamics.