Microscopic realization of two-dimensional bosonic topological insulators

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Abstract

It is well known that a bosonic Mott insulator can be realized by condensing vortices of a boson condensate. Usually, a vortex becomes an antivortex (and vice versa) under time reversal symmetry, and the condensation of vortices results in a trivial Mott insulator. However, if each vortex or antivortex interacts with a spin trapped at its core, the time reversal transformation of the composite vortex operator will contain an extra minus sign. It turns out that such a composite vortex condensed state is a bosonic topological insulator (BTI) with gapless boundary excitations protected by U(1)Z2T symmetry. We point out that in BTI, an external π-flux monodromy defect carries a Kramers doublet. We propose lattice model Hamiltonians to realize the BTI phase, which might be implemented in cold atom systems or spin-1 solid state systems.

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Liu, Z. X., Gu, Z. C., & Wen, X. G. (2014). Microscopic realization of two-dimensional bosonic topological insulators. Physical Review Letters, 113(26). https://doi.org/10.1103/PhysRevLett.113.267206

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