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Article Dans Une Revue Comptes Rendus. Physique Année : 2008

Hyperfine interaction in InAs/GaAs self-assembled quantum dots: dynamical nuclear polarization versus spin relaxation

Résumé

We report on the influence of the hyperfine interaction on the optical orientation of singly charged excitons X-+/- in self-assembled InAs/GaAs quantum dots. All measurements were carried out on individual quantum dots studied by micro-photoluminescence at low temperature. We show that the hyperfine interaction leads to an effective partial spin relaxation, under 50 kHz modulated excitation polarization, which becomes, however, strongly inhibited under steady optical pumping conditions because of dynamical nuclear polarization. This optically created magnetic-like nuclear field can become very strong (up to similar to 4 T) when it is generated in the direction opposite to a longitudinally applied field, and exhibits then a bistability regime. This effect is very well described by a theoretical model derived in a perturbative approach, which reveals the key role played by the energy cost of an electron spin flip in the total magnetic field. Finally, we emphasize the similarities and differences between X+ and X- trions with respect to the hyperfine interaction, which turn out to be in perfect agreement with the theoretical description. To cite this article: O. Krebs et al., C R. Physique 9 (2008). (C) 2008 Academie des sciences. Published by Elsevier Masson SAS. All rights reserved.

Dates et versions

hal-01287875 , version 1 (14-03-2016)

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Olivier Krebs, Benoît Eble, Aristide Lemaître, Paul Voisin, Bernhard Urbaszek, et al.. Hyperfine interaction in InAs/GaAs self-assembled quantum dots: dynamical nuclear polarization versus spin relaxation. Comptes Rendus. Physique, 2008, 9 (8), pp.874-884. ⟨10.1016/j.crhy.2008.10.001⟩. ⟨hal-01287875⟩
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