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Bilayer fractional quantum Hall states with dipoles.

Authors :
Yao, N. Y.
Bennett, S. D.
Laumann, C. R.
Lev, B. L.
Gorshkov, A. V.
Source :
Physical Review A: Atomic, Molecular & Optical Physics. Sep2015, Vol. 92 Issue 3-B, p033609-1-033609-11. 11p.
Publication Year :
2015

Abstract

Using the example of dysprosium atoms in an optical lattice, we show how dipolar interactions between magnetic dipoles can be used to obtain fractional quantum Hall states. In our approach, dysprosium atoms are trapped one atom per site in a deep optical lattice with negligible tunneling. Microwave and spatially dependent optical dressing fields are used to define an effective spin-12 or spin-1/2 degree of freedom in each atom. Thinking of spin-12 particles as hard-core bosons, dipole-dipole interactions give rise to boson hopping, topological flat bands with Chern number 1, and the υ=½ Laughlin state. Thinking of spin-1/2 particles as two-component hard-core bosons, dipole-dipole interactions again give rise to boson hopping, topological flat bands with Chern number 2, and the bilayer Halperin (2,2,1) state. By adjusting the optical fields, we find a phase diagram, in which the (2,2,1) state competes with superfluidity. Generalizations to solid-state magnetic dipoles are discussed. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
10502947
Volume :
92
Issue :
3-B
Database :
Academic Search Index
Journal :
Physical Review A: Atomic, Molecular & Optical Physics
Publication Type :
Periodical
Accession number :
110471885
Full Text :
https://doi.org/10.1103/PhysRevA.92.033609