OMSIQUD

Coupling Confined Optical and Mechanical Modes to a Single Quantum Dot

 Coordinatore CENTRE NATIONAL DE LA RECHERCHE SCIENTIFIQUE 

 Organization address address: Rue Michel -Ange 3
city: PARIS
postcode: 75794

contact info
Titolo: Mr.
Nome: Philippe
Cognome: Cavelier
Email: send email
Telefono: 33145075753

 Nazionalità Coordinatore France [FR]
 Totale costo 194˙046 €
 EC contributo 194˙046 €
 Programma FP7-PEOPLE
Specific programme "People" implementing the Seventh Framework Programme of the European Community for research, technological development and demonstration activities (2007 to 2013)
 Code Call FP7-PEOPLE-2013-IIF
 Funding Scheme MC-IIF
 Anno di inizio 2014
 Periodo (anno-mese-giorno) 2014-04-17   -   2016-04-16

 Partecipanti

# participant  country  role  EC contrib. [€] 
1    CENTRE NATIONAL DE LA RECHERCHE SCIENTIFIQUE

 Organization address address: Rue Michel -Ange 3
city: PARIS
postcode: 75794

contact info
Titolo: Mr.
Nome: Philippe
Cognome: Cavelier
Email: send email
Telefono: 33145075753

FR (PARIS) coordinator 194˙046.60

Mappa


 Word cloud

Esplora la "nuvola delle parole (Word Cloud) per avere un'idea di massima del progetto.

optomechanics    coupling    photon    optomechanical    phonon    optical    quantum    modification    microcavity    mechanical    modes    coupled    assisted    cavity    single    density    optimized    ghz    pillar    motion    qd    first   

 Obiettivo del progetto (Objective)

'The project bridges the gap between two yet distinct research fields: optomechanics of deformable cavities (cavity optomechanics) and cavity quantum electrodynamics (cavity QED). This project aims at exploring a hybrid interface between these two domains, using semiconductor nanostructures. In particular, we propose the use of a single quantum dot (QD) coupled to a pillar microcavity to study photon-phonon interactions. It has been demonstrated that an optimized optical GaAs/AlAs-based microcavity is automatically an optimized acoustic resonator. This results in a novel platform for optomechanics based on optical micropillars and planar microcavities with optomechanical coupling able to reach 80 THz/nm, working frequencies of the order of 20-200 GHz, and an operating optical wavelength in the NIR range. The confined modes of the pillar microcavity are of very high quality factor (reaching 1 million), and enable a coupling of the cavity photons both to the ~20-GHz mechanical modes of the pillar and to a single InAs QD inserted in the center of the microcavity. In this novel field of research proposed by the project, the aim is to control a coupled tri-partite system: a cavity photon interacts with a coherent quantum emitter (two-level atom) and with a single mechanical mode. First optomechanics experiments relying on the coupling to a QD will be performed: the observation of QD-assisted optomechanical dynamical back-action, leading to the QD-assisted control of the pillar mechanical motion, and then the modification by the pillar mechanical motion of the resonant optical response of a QD in a cavity. We also aim to demonstrate for the first time an engineering of the phonon density of states around a single QD. We will measure the modification of the phonon density of states through the investigation of the phonon assisted emission of a single QD coupled to an optical micropillar cavity.'

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