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Electrical Initialization of Electron and Nuclear Spins in a Single Quantum Dot at Zero Magnetic Field

  • Fabian Cadiz
  • , Abdelhak Djeffal
  • , Delphine Lagarde
  • , Andrea Balocchi
  • , Bingshan Tao
  • , Bo Xu
  • , Shiheng Liang
  • , Mathieu Stoffel
  • , Xavier Devaux
  • , Henri Jaffres
  • , Jean Marie George
  • , Michel Hehn
  • , Stephane Mangin
  • , Helene Carrere
  • , Xavier Marie
  • , Thierry Amand
  • , Xiufeng Han
  • , Zhanguo Wang
  • , Bernhard Urbaszek
  • , Yuan Lu
  • Pierre Renucci
  • Université Paul Sabatier
  • Nancy Université
  • Institute of Physics Chinese Academy of Sciences
  • Institute of Semiconductors Chinese Academy of Sciences
  • Unité Mixte de Physique CNRS/Thales

Résultats de recherche: Contribution à un journalArticleRevue par des pairs

Résumé

The emission of circularly polarized light from a single quantum dot relies on the injection of carriers with well-defined spin polarization. Here we demonstrate single dot electroluminescence (EL) with a circular polarization degree up to 35% at zero applied magnetic field. The injection of spin-polarized electrons is achieved by combining ultrathin CoFeB electrodes on top of a spin-LED device with p-type InGaAs quantum dots in the active region. We measure an Overhauser shift of several microelectronvolts at zero magnetic field for the positively charged exciton (trion X+) EL emission, which changes sign as we reverse the injected electron spin orientation. This is a signature of dynamic polarization of the nuclear spins in the quantum dot induced by the hyperfine interaction with the electrically injected electron spin. This study paves the way for electrical control of nuclear spin polarization in a single quantum dot without any external magnetic field.

langue originaleAnglais
Pages (de - à)2381-2386
Nombre de pages6
journalNano Letters
Volume18
Numéro de publication4
Les DOIs
étatPublié - 11 avr. 2018
Modification externeOui

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