Abstract
We present a scheme of interaction-induced topological band structures based on the spin anisotropy of exciton-polaritons in semiconductor microcavities. We predict theoretically that this scheme allows the engineering of topological gaps, without requiring a magnetic field or strong spin-orbit interaction (transverse electric-transverse magnetic splitting). Under nonresonant pumping we find that an initially topologically trivial system undergoes a topological transition upon the spontaneous breaking of phase symmetry associated with polariton condensation. Under either nonresonant or resonant coherent pumping we find that it is also possible to engineer a topological dispersion that is linear in wave vector - a property associated with polariton superfluidity.
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CITATION STYLE
Sigurdsson, H., Li, G., & Liew, T. C. H. (2017). Spontaneous and superfluid chiral edge states in exciton-polariton condensates. Physical Review B, 96(11). https://doi.org/10.1103/PhysRevB.96.115453
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