Cavity exciton-polaritons1, 2 (polaritons) are bosonic quasi-particles offering a unique solid-state system for investigating interacting condensates3, 4, 5, 6, 7, 8, 9, 10. Up to now, disorder-induced localization and short lifetimes4, 6, 11 have prevented the establishment of long-range off-diagonal order12 needed for any quantum manipulation of the condensate wavefunction. In this work, using a wire microcavity with polariton lifetimes much longer than in previous samples, we show that polariton condensates can propagate over macroscopic distances outside the excitation area, while preserving their spontaneous spatial coherence. An extended condensate wavefunction builds up with a degree of spatial coherence larger than 50% over distances 50 times the polariton de Broglie wavelength. The expansion of the condensate is shown to be governed by the repulsive potential induced by photogenerated excitons within the excitation area. The control of this local potential offers a new and versatile method to manipulate extended polariton condensates. As an illustration, we demonstrate synchronization of extended condensates by controlled tunnel coupling13, 14 and localization of condensates in a trap with optically controlled dimensions.

Spontaneous formation and optical manipulation of extended polariton condensates

D Sanvitto;
2010

Abstract

Cavity exciton-polaritons1, 2 (polaritons) are bosonic quasi-particles offering a unique solid-state system for investigating interacting condensates3, 4, 5, 6, 7, 8, 9, 10. Up to now, disorder-induced localization and short lifetimes4, 6, 11 have prevented the establishment of long-range off-diagonal order12 needed for any quantum manipulation of the condensate wavefunction. In this work, using a wire microcavity with polariton lifetimes much longer than in previous samples, we show that polariton condensates can propagate over macroscopic distances outside the excitation area, while preserving their spontaneous spatial coherence. An extended condensate wavefunction builds up with a degree of spatial coherence larger than 50% over distances 50 times the polariton de Broglie wavelength. The expansion of the condensate is shown to be governed by the repulsive potential induced by photogenerated excitons within the excitation area. The control of this local potential offers a new and versatile method to manipulate extended polariton condensates. As an illustration, we demonstrate synchronization of extended condensates by controlled tunnel coupling13, 14 and localization of condensates in a trap with optically controlled dimensions.
2010
Istituto di Nanotecnologia - NANOTEC
Istituto Nanoscienze - NANO
BOSE-EINSTEIN CONDENSATION. SEMICONDUCTOR MICROCAVITY
EXCITON POLARITONS
SUPERFLUIDITY
VORTICES
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/11373
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