4.6 Article

Interacting bosons in topological optical flux lattices

Journal

PHYSICAL REVIEW B
Volume 91, Issue 3, Pages -

Publisher

AMER PHYSICAL SOC
DOI: 10.1103/PhysRevB.91.035115

Keywords

-

Funding

  1. Austrian Science Foundation (FWF) SFB Focus [F40-18]
  2. NSF CAREER [DMR-0952428, ONR-N00014-11-1-0635, MURI-130-6082]
  3. Packard Foundation
  4. Keck grant
  5. Princeton Global Scholarship
  6. EPSRC [EP/J017639/1]
  7. Austrian Ministry of Science BMWF, Konjunkturpaket II of the Focal Point Scientific Computing at the University of Innsbruck
  8. [ANR-12-BS04-0002-02]
  9. EPSRC [EP/J017639/1, EP/K030094/1] Funding Source: UKRI
  10. Engineering and Physical Sciences Research Council [EP/J017639/1, EP/K030094/1] Funding Source: researchfish
  11. Direct For Mathematical & Physical Scien
  12. Division Of Materials Research [0952428] Funding Source: National Science Foundation

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An interesting route to the realization of topological Chern bands in ultracold atomic gases is through the use of optical flux lattices. These models differ from the tight-binding real-space lattice models of Chern insulators that are conventionally studied in solid-state contexts. Instead, they involve the coherent coupling of internal atomic (spin) states, and can be viewed as tight-binding models in reciprocal space. By changing the form of the coupling and the number N of internal spin states, they give rise to Chern bands with controllable Chern number and with nearly flat energy dispersion. We investigate in detail how interactions between bosons occupying these bands can lead to the emergence of fractional quantum Hall states, such as the Laughlin and Moore-Read states. In order to test the experimental realization of these phases, we study their stability with respect to band dispersion and band mixing. We also probe interesting topological phases that emerge in these systems when the Chern number is greater than 1.

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