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An artificial Rb atom in a semiconductor with lifetime-limited linewidth
JournalArticle (Originalarbeit in einer wissenschaftlichen Zeitschrift)
 
ID 3375915
Author(s) Jahn, Jan-Philipp; Munsch, Mathieu; Béguin, Lucas; Kuhlmann, Andreas V.; Renggli, Martina; Huo, Yongheng; Ding, Fei; Trotta, Rinaldo; Reindl, Marcus; Schmidt, Oliver G.; Rastelli, Armando; Treutlein, Philipp; Warburton, Richard J.
Author(s) at UniBasel Treutlein, Philipp
Jahn, Jan-Philipp
Munsch, Mathieu
Beguin, Lucas
Kuhlmann, Andreas
Warburton, Richard
Year 2015
Title An artificial Rb atom in a semiconductor with lifetime-limited linewidth
Journal Physical Review B
Volume 92
Number 24
Pages / Article-Number 245439
Abstract We report results important for the creation of a best-of-both-worlds quantum hybrid system consisting of a solid-state source of single photons and an atomic ensemble as quantum memory. We generate single photons from a GaAs quantum dot (QD) frequency-matched to the Rb D2-transitions and then use the Rb transitions to analyze spectrally the quantum dot photons. We demonstrate lifetime-limited QD linewidths (1.48 GHz) with both resonant and non-resonant excitation. The QD resonance fluorescence in the low power regime is dominated by Rayleigh scattering, a route to match quantum dot and Rb atom linewidths and to shape the temporal wave packet of the QD photons. Noise in the solid-state environment is relatively benign: there is a blinking of the resonance fluorescence at MHz rates but negligible upper state dephasing of the QD transition. We therefore establish a close-to-ideal solid-state source of single photons at a key wavelength for quantum technologies.
Publisher American Physical Society
ISSN/ISBN 2469-9950 ; 2469-9969
edoc-URL http://edoc.unibas.ch/40717/
Full Text on edoc Available
Digital Object Identifier DOI 10.1103/PhysRevB.92.245439
ISI-Number WOS:000367378900015
Document type (ISI) Article
 
   

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