| Literature DB >> 24518009 |
T Boulier1, M Bamba2, A Amo3, C Adrados1, A Lemaitre4, E Galopin4, I Sagnes4, J Bloch4, C Ciuti5, E Giacobino1, A Bramati1.
Abstract
The generation of squeezed and entangled light fields is a crucial ingredient for the implementation of quantum information protocols. In this context, semiconductor materials offer a strong potential for the implementation of on-chip devices operating at the quantum level. Here we demonstrate a novel source of continuous variable squeezed light in pillar-shaped semiconductor microcavities in the strong coupling regime. Degenerate polariton four-wave mixing is obtained by exciting the pillar at normal incidence. We observe a bistable behaviour and we demonstrate the generation of squeezing near the turning point of the bistability curve. The confined pillar geometry allows for a larger amount of squeezing than planar microcavities due to the discrete energy levels protected from excess noise. By analysing the noise of the emitted light, we obtain a measured intensity squeezing of 20.3%, inferred to be 35.8% after corrections.Year: 2014 PMID: 24518009 DOI: 10.1038/ncomms4260
Source DB: PubMed Journal: Nat Commun ISSN: 2041-1723 Impact factor: 14.919