English

3D quaternionic condensations, Hopf invariants, and skyrmion lattices with synthetic spin-orbit coupling

Quantum Gases 2016-03-30 v3

Abstract

We study the topological configurations of the two-component condensates of bosons with the 33D σp\vec{\sigma}\cdot \vec{p} Weyl-type spin-orbit coupling subject to a harmonic trapping potential. The topology of the condensate wavefunctions manifests in the quaternionic representation. In comparison to the U(1)U(1) complex phase, the quaternionic phase manifold is S3S^3 and the spin orientations form the S2S^2 Bloch sphere through the 1st Hopf mapping. The spatial distributions of the quaternionic phases exhibit the 3D skyrmion configurations, and the spin distributions possess non-trivial Hopf invariants. Spin textures evolve from the concentric distributions at the weak spin-orbit coupling regime to the rotation symmetry breaking patterns at the intermediate spin-orbit coupling regime. In the strong spin-orbit coupling regime, the single-particle spectra exhibit the Landau-level type quantization. In this regime, the three-dimensional skyrmion lattice structures are formed when interactions are below the energy scale of Landau level mixings. Sufficiently strong interactions can change condensates into spin-polarized plane-wave states, or, superpositions of two plane-waves exhibiting helical spin spirals.

Keywords

Cite

@article{arxiv.1205.2162,
  title  = {3D quaternionic condensations, Hopf invariants, and skyrmion lattices with synthetic spin-orbit coupling},
  author = {Yi Li and Xiangfa Zhou and Congjun Wu},
  journal= {arXiv preprint arXiv:1205.2162},
  year   = {2016}
}