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Dynamical topological phases in quenched spin-orbit coupled degenerate Fermi gas

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arxiv 1406.3821 v2 pith:FWEQAHUM submitted 2014-06-15 cond-mat.quant-gas

Dynamical topological phases in quenched spin-orbit coupled degenerate Fermi gas

classification cond-mat.quant-gas
keywords topologicaldynamicalfermiorderparameterphasephasesspin-orbit
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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The spin-orbit coupled degenerate Fermi gas provides a totally new platform to realize topological superfluids and related topological excitations. Previous studies have mainly focused on the properties of the ground state. Here we consider a two-dimensional Fermi gas with Rashba spin-orbit coupling subject to a perpendicular Zeeman field. For this system, we have found that its ground state topological structure is captured by the spin texture, which is readily measurable in experiments. We show that, when the Zeeman field is suddenly quenched, dynamical topological phases can be realized. More specifically, three post-quench dynamical phases can be identified according to the asymptotic behavior of the order parameter. In the undamped phase, a persistent oscillation of the order parameter may support a topological Floquet state with multiple edge states. In the Landau damped phase, the magnitude of the order parameter approaches a constant via a power-law decay, and this system can support a dynamical topological phase with a pair of edge states at the boundary. In the over-damped phase, the order parameter decays to zero exponentially although the condensate fraction remains finite. These predictions can be observed in the strong coupling regime of ultracold Fermi gas.

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