Integrated quantum light sources in photonic circuits are envisaged as the building blocks of future on-chip architectures for quantum logic operations. While semiconductor quantum dots have been proven to be the highly efficient emitters of quantum light, their interaction with the host material induces spectral decoherence, which decreases the indistinguishability of the emitted photons and limits their functionality. Here, we show that the indistinguishability of in-plane photons can be greatly enhanced by performing resonance fluorescence on a quantum dot coupled to a photonic crystal waveguide. We find that the resonant optical excitation of an exciton state induces an increase in the emitted single-photon coherence by a factor of 15. Two-photon interference experiments reveal a visibility of 0.80 ± 0.03, which is in good agreement with our theoretical model. Combined with the high in-plane light-injection efficiency of photonic crystal waveguides, our results pave the way for the use of this system for the on-chip generation and transmission of highly indistinguishable photons.
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10 October 2016
Research Article|
October 13 2016
Enhanced indistinguishability of in-plane single photons by resonance fluorescence on an integrated quantum dot Available to Purchase
Sokratis Kalliakos;
Sokratis Kalliakos
a)
1Cambridge Research Laboratory,
Toshiba Research Europe Limited
, 208 Science Park, Milton Road, Cambridge CB4 0GZ, United Kingdom
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Yarden Brody;
Yarden Brody
1Cambridge Research Laboratory,
Toshiba Research Europe Limited
, 208 Science Park, Milton Road, Cambridge CB4 0GZ, United Kingdom
2Cavendish Laboratory,
University of Cambridge
, J. J. Thomson Avenue, Cambridge CB3 0HE, United Kingdom
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Anthony J. Bennett;
Anthony J. Bennett
1Cambridge Research Laboratory,
Toshiba Research Europe Limited
, 208 Science Park, Milton Road, Cambridge CB4 0GZ, United Kingdom
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David J. P. Ellis;
David J. P. Ellis
1Cambridge Research Laboratory,
Toshiba Research Europe Limited
, 208 Science Park, Milton Road, Cambridge CB4 0GZ, United Kingdom
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Joanna Skiba-Szymanska;
Joanna Skiba-Szymanska
1Cambridge Research Laboratory,
Toshiba Research Europe Limited
, 208 Science Park, Milton Road, Cambridge CB4 0GZ, United Kingdom
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Ian Farrer
;
Ian Farrer
b)
2Cavendish Laboratory,
University of Cambridge
, J. J. Thomson Avenue, Cambridge CB3 0HE, United Kingdom
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Jonathan P. Griffiths;
Jonathan P. Griffiths
2Cavendish Laboratory,
University of Cambridge
, J. J. Thomson Avenue, Cambridge CB3 0HE, United Kingdom
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David A. Ritchie;
David A. Ritchie
2Cavendish Laboratory,
University of Cambridge
, J. J. Thomson Avenue, Cambridge CB3 0HE, United Kingdom
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Andrew J. Shields
Andrew J. Shields
1Cambridge Research Laboratory,
Toshiba Research Europe Limited
, 208 Science Park, Milton Road, Cambridge CB4 0GZ, United Kingdom
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Sokratis Kalliakos
1,a)
Yarden Brody
1,2
Anthony J. Bennett
1
David J. P. Ellis
1
Joanna Skiba-Szymanska
1
Ian Farrer
2,b)
Jonathan P. Griffiths
2
David A. Ritchie
2
Andrew J. Shields
1
1Cambridge Research Laboratory,
Toshiba Research Europe Limited
, 208 Science Park, Milton Road, Cambridge CB4 0GZ, United Kingdom
2Cavendish Laboratory,
University of Cambridge
, J. J. Thomson Avenue, Cambridge CB3 0HE, United Kingdom
a)
E-mail: [email protected]
b)
Present address: Department of Electronic and Electrical Engineering, The University of Sheffield, Mappin Street, Sheffield S1 3JD, United Kingdom.
Appl. Phys. Lett. 109, 151112 (2016)
Article history
Received:
July 04 2016
Accepted:
October 04 2016
Citation
Sokratis Kalliakos, Yarden Brody, Anthony J. Bennett, David J. P. Ellis, Joanna Skiba-Szymanska, Ian Farrer, Jonathan P. Griffiths, David A. Ritchie, Andrew J. Shields; Enhanced indistinguishability of in-plane single photons by resonance fluorescence on an integrated quantum dot. Appl. Phys. Lett. 10 October 2016; 109 (15): 151112. https://doi.org/10.1063/1.4964888
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