Spatial self-organization of macroscopic quantum states of exciton-polaritons in acoustic lattices
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Exciton-polariton systems can sustain macroscopic quantum states (MQSs) under a periodic potential modulation. In this paper, we investigate the structure of these states in acoustic square lattices by probing their wave functions in real and momentum spaces using spectral tomography. We show that the polariton MQSs, when excited by a Gaussian laser beam, self-organize in a concentric structure, consisting of a single, two-dimensional gap-soliton (GS) state surrounded by one dimensional (1D) MQSs with lower energy. The latter form at hyperbolical points of the modulated polariton dispersion. While the size of the GS tends to saturate with increasing particle density, the emission region of the surrounding 1D states increases. The existence of these MQSs in acoustic lattices is quantitatively supported by a theoretical model based on the variational solution of the Gross-Pitaevskii equation. The formation of the 1D states in a ring around the central GS is attributed to the energy gradient in this region, which reduces the overall symmetry of the lattice. The results broaden the experimental understanding of self-localized polariton states, which may prove relevant for functionalities exploiting solitonic objects. © 2016 IOP Publishing Ltd and Deutsche Physikalische Gesellschaft.
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exciton-polaritons; semiconductor microcavities; solitons; surface acoustic waves Acoustic surface wave devices; Acoustic waves; Bose-Einstein condensation; Excited states; Excitons; Laser beams; Phonons; Photons; Solitons; Wave functions; Concentric structures; Exciton polaritons; Gross-Pitaevskii equation; Macroscopic quantum state; Polariton dispersion; Semiconductor microcavities; Surface acoustic waves; Variational solutions; Quantum theory
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