Literature DB >> 31634901

A gated quantum dot strongly coupled to an optical microcavity.

Daniel Najer1, Immo Söllner2, Pavel Sekatski2, Vincent Dolique3, Matthias C Löbl2, Daniel Riedel2, Rüdiger Schott4, Sebastian Starosielec2, Sascha R Valentin4, Andreas D Wieck4, Nicolas Sangouard2, Arne Ludwig4, Richard J Warburton2.   

Abstract

The strong-coupling regime of cavity quantum electrodynamics (QED) represents the light-matter interaction at the fully quantum level. Adding a single photon shifts the resonance frequencies-a profound nonlinearity. Cavity QED is a test bed for quantum optics1-3 and the basis of photon-photon and atom-atom entangling gates4,5. At microwave frequencies, cavity QED has had a transformative effect6, enabling qubit readout and qubit couplings in superconducting circuits. At optical frequencies, the gates are potentially much faster; the photons can propagate over long distances and can be easily detected. Following pioneering work on single atoms1-3,7, solid-state implementations using semiconductor quantum dots are emerging8-15. However, miniaturizing semiconductor cavities without introducing charge noise and scattering losses remains a challenge. Here we present a gated, ultralow-loss, frequency-tunable microcavity device. The gates allow both the quantum dot charge and its resonance frequency to be controlled electrically. Furthermore, cavity feeding10,11,13-17, the observation of the bare-cavity mode even at the quantum dot-cavity resonance, is eliminated. Even inside the microcavity, the quantum dot has a linewidth close to the radiative limit. In addition to a very pronounced avoided crossing in the spectral domain, we observe a clear coherent exchange of a single energy quantum between the 'atom' (the quantum dot) and the cavity in the time domain (vacuum Rabi oscillations), whereas decoherence arises mainly via the atom and photon loss channels. This coherence is exploited to probe the transitions between the singly and doubly excited photon-atom system using photon-statistics spectroscopy18. The work establishes a route to the development of semiconductor-based quantum photonics, such as single-photon sources and photon-photon gates.

Entities:  

Year:  2019        PMID: 31634901     DOI: 10.1038/s41586-019-1709-y

Source DB:  PubMed          Journal:  Nature        ISSN: 0028-0836            Impact factor:   49.962


  21 in total

1.  Efficient scheme for two-atom entanglement and quantum information processing in cavity QED

Authors: 
Journal:  Phys Rev Lett       Date:  2000-09-11       Impact factor: 9.161

2.  Scalable photonic quantum computation through cavity-assisted interactions.

Authors:  L-M Duan; H J Kimble
Journal:  Phys Rev Lett       Date:  2004-03-25       Impact factor: 9.161

3.  Strong coupling in a single quantum dot-semiconductor microcavity system.

Authors:  J P Reithmaier; G Sek; A Löffler; C Hofmann; S Kuhn; S Reitzenstein; L V Keldysh; V D Kulakovskii; T L Reinecke; A Forchel
Journal:  Nature       Date:  2004-11-11       Impact factor: 49.962

4.  Vacuum Rabi splitting with a single quantum dot in a photonic crystal nanocavity.

Authors:  T Yoshie; A Scherer; J Hendrickson; G Khitrova; H M Gibbs; G Rupper; C Ell; O B Shchekin; D G Deppe
Journal:  Nature       Date:  2004-11-11       Impact factor: 49.962

5.  Observation of the vacuum Rabi spectrum for one trapped atom.

Authors:  A Boca; R Miller; K M Birnbaum; A D Boozer; J McKeever; H J Kimble
Journal:  Phys Rev Lett       Date:  2004-12-03       Impact factor: 9.161

6.  Photon blockade in an optical cavity with one trapped atom.

Authors:  K M Birnbaum; A Boca; R Miller; A D Boozer; T E Northup; H J Kimble
Journal:  Nature       Date:  2005-07-07       Impact factor: 49.962

7.  Quantum nature of a strongly coupled single quantum dot-cavity system.

Authors:  K Hennessy; A Badolato; M Winger; D Gerace; M Atatüre; S Gulde; S Fält; E L Hu; A Imamoğlu
Journal:  Nature       Date:  2007-01-28       Impact factor: 49.962

8.  Externally mode-matched cavity quantum electrodynamics with charge-tunable quantum dots.

Authors:  M T Rakher; N G Stoltz; L A Coldren; P M Petroff; D Bouwmeester
Journal:  Phys Rev Lett       Date:  2009-03-05       Impact factor: 9.161

9.  Climbing the Jaynes-Cummings ladder and observing its nonlinearity in a cavity QED system.

Authors:  J M Fink; M Göppl; M Baur; R Bianchetti; P J Leek; A Blais; A Wallraff
Journal:  Nature       Date:  2008-07-17       Impact factor: 49.962

10.  Two-Photon Blockade in an Atom-Driven Cavity QED System.

Authors:  Christoph Hamsen; Karl Nicolas Tolazzi; Tatjana Wilk; Gerhard Rempe
Journal:  Phys Rev Lett       Date:  2017-03-31       Impact factor: 9.161

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  5 in total

1.  Nonclassical Effects Based on Husimi Distributions in Two Open Cavities Linked by an Optical Waveguide.

Authors:  Abdel-Baset A Mohamed; Hichem Eleuch
Journal:  Entropy (Basel)       Date:  2020-07-13       Impact factor: 2.524

2.  Hydrodynamical self-interference of a scattered polariton quanta.

Authors:  Jiahui Huang; Wei Liu; Chee Wei Wong
Journal:  Light Sci Appl       Date:  2020-09-03       Impact factor: 17.782

3.  Surpassing the classical limit in magic square game with distant quantum dots coupled to optical cavities.

Authors:  Sinan Bugu; Fatih Ozaydin; Tetsuo Kodera
Journal:  Sci Rep       Date:  2020-12-17       Impact factor: 4.379

4.  Wafer-scale epitaxial modulation of quantum dot density.

Authors:  N Bart; C Dangel; P Zajac; N Spitzer; J Ritzmann; M Schmidt; H G Babin; R Schott; S R Valentin; S Scholz; Y Wang; R Uppu; D Najer; M C Löbl; N Tomm; A Javadi; N O Antoniadis; L Midolo; K Müller; R J Warburton; P Lodahl; A D Wieck; J J Finley; A Ludwig
Journal:  Nat Commun       Date:  2022-03-28       Impact factor: 17.694

5.  Dynamic control of Purcell enhanced emission of erbium ions in nanoparticles.

Authors:  Bernardo Casabone; Chetan Deshmukh; Shuping Liu; Diana Serrano; Alban Ferrier; Thomas Hümmer; Philippe Goldner; David Hunger; Hugues de Riedmatten
Journal:  Nat Commun       Date:  2021-06-11       Impact factor: 14.919

  5 in total

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