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Synthetic magnetic fluxes on the honeycomb lattice
Journal article

Synthetic magnetic fluxes on the honeycomb lattice

Agnieszka Gorecka, Benoit Gremaud and Christian Miniatura
Physical review. A, Atomic, molecular, and optical physics, Vol.84(2), 023604
04/08/2011

Abstract

Optics Physical Sciences Physics Physics, Atomic, Molecular & Chemical Science & Technology
We devise experimental schemes that are able to mimic uniform and staggered magnetic fluxes acting on ultracold two-electron atoms, such as ytterbium atoms, propagating in a honeycomb lattice. The atoms are first trapped into two independent state-selective triangular lattices and then further exposed to a suitable configuration of resonant Raman laser beams. These beams induce hops between the two triangular lattices and make atoms move in a honeycomb lattice. Atoms traveling around each unit cell of this honeycomb lattice pick up a nonzero phase. In the uniform case, the artificial magnetic flux sustained by each cell can reach about two flux quanta, thereby realizing a cold-atom analog of the Harper model with its notorious Hofstadter's butterfly structure. Different condensed-matter phenomena such as the relativistic integer and fractional quantum Hall effects, as observed in graphene samples, could be targeted with this scheme.

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