Fast control of nuclear spin polarization in an optically pumped single quantum dot

  • M. N. Makhonin
  • , K. V. Kavokin
  • , P. Senellart
  • , A. Lemaître
  • , A. J. Ramsay
  • , M. S. Skolnick
  • , A. I. Tartakovskii

Research output: Contribution to journalArticlepeer-review

Abstract

Highly polarized nuclear spins within a semiconductor quantum dot induce effective magnetic (Overhauser) fields of up to several Tesla acting on the electron spin, or up to a few hundred mT for the hole spin. Recently this has been recognized as a resource for intrinsic control of quantum-dot-based spin quantum bits. However, only static long-lived Overhauser fields could be used. Here we demonstrate fast redirection on the microsecond timescale of Overhauser fields on the order of 0.5 T experienced by a single electron spin in an optically pumped GaAs quantum dot. This has been achieved using coherent control of an ensemble of 10 5 optically polarized nuclear spins by sequences of short radiofrequency pulses. These results open the way to a new class of experiments using radiofrequency techniques to achieve highly correlated nuclear spins in quantum dots, such as adiabatic demagnetization in the rotating frame leading to sub-1/4K nuclear spin temperatures, rapid adiabatic passage, and spin squeezing.

Original languageEnglish
Pages (from-to)844-848
Number of pages5
JournalNature Materials
Volume10
Issue number11
DOIs
Publication statusPublished - 1 Jan 2011
Externally publishedYes

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