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Controlling the helicity of light by electrical magnetization switching

  • Pambiang Abel Dainone
  • , Nicholas Figueiredo Prestes
  • , Pierre Renucci
  • , Alexandre Bouché
  • , Martina Morassi
  • , Xavier Devaux
  • , Markus Lindemann
  • , Jean Marie George
  • , Henri Jaffrès
  • , Aristide Lemaitre
  • , Bo Xu
  • , Mathieu Stoffel
  • , Tongxin Chen
  • , Laurent Lombez
  • , Delphine Lagarde
  • , Guangwei Cong
  • , Tianyi Ma
  • , Philippe Pigeat
  • , Michel Vergnat
  • , Hervé Rinnert
  • Xavier Marie, Xiufeng Han, Stephane Mangin, Juan Carlos Rojas-Sánchez, Jian Ping Wang, Matthew C. Beard, Nils C. Gerhardt, Igor Žutić, Yuan Lu
  • Institut Jean Lamour
  • Université Paris-Saclay
  • Université Toulouse III - Paul Sabatier
  • Centre de Nanosciences et de Nanotechnologies
  • Ruhr University Bochum
  • CAS - Institute of Semiconductors
  • University of Chinese Academy of Sciences
  • National Institute of Advanced Industrial Science and Technology
  • CAS - Institute of Physics
  • University of Minnesota Twin Cities
  • National Renewable Energy Laboratory

Research output: Contribution to journalArticlepeer-review

54 Scopus citations

Abstract

Controlling the intensity of emitted light and charge current is the basis of transferring and processing information1. By contrast, robust information storage and magnetic random-access memories are implemented using the spin of the carrier and the associated magnetization in ferromagnets2. The missing link between the respective disciplines of photonics, electronics and spintronics is to modulate the circular polarization of the emitted light, rather than its intensity, by electrically controlled magnetization. Here we demonstrate that this missing link is established at room temperature and zero applied magnetic field in light-emitting diodes2–7, through the transfer of angular momentum between photons, electrons and ferromagnets. With spin–orbit torque8–11, a charge current generates also a spin current to electrically switch the magnetization. This switching determines the spin orientation of injected carriers into semiconductors, in which the transfer of angular momentum from the electron spin to photon controls the circular polarization of the emitted light2. The spin–photon conversion with the nonvolatile control of magnetization opens paths to seamlessly integrate information transfer, processing and storage. Our results provide substantial advances towards electrically controlled ultrafast modulation of circular polarization and spin injection with magnetization dynamics for the next-generation information and communication technology12, including space–light data transfer. The same operating principle in scaled-down structures or using two-dimensional materials will enable transformative opportunities for quantum information processing with spin-controlled single-photon sources, as well as for implementing spin-dependent time-resolved spectroscopies.

Original languageEnglish
Pages (from-to)783-788
Number of pages6
JournalNature
Volume627
Issue number8005
DOIs
StatePublished - Mar 28 2024

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