Tailoring the chiral magnetic interaction between two individual atoms

ORAL

Abstract

Chiral magnets are a promising route toward dense magnetic storage technology due to their inherent nano-scale dimensions and energy efficient properties. Engineering chiral magnets requires atomic-level control of the magnetic exchange interactions, including the Dzyaloshinskii-Moriya interaction, which defines a rotational sense for the magnetization of two coupled magnetic moments. Here we show that the indirect conduction electron mediated Dzyaloshinskii-Moriya interaction between two individual magnetic atoms on a metallic surface can be manipulated by changing the interatomic distance with the tip of a scanning tunneling microscope. We quantify this interaction by comparing our measurements to a quantum magnetic model and ab-initio calculations yielding a map of the chiral ground states of pairs of atoms depending on the interatomic separation. The map enables tailoring the chirality of the magnetization in dilute atomic-scale magnets.

*Acknowledgements: SFB668, GrK1286, SFB767, LO 1659 5-1, Emmy Noether Program of the DFG, FOM of NWO, VH-NG-717

Authors

  • J. Wiebe

    • Institute for Nanostructure and Solid State Research, Hamburg University
  • A. A. Khajetoorians

    • Institute for Molecules and Materials, Radboud University, Nijmegen
  • M. Steinbrecher

    • Institute for Nanostructure and Solid State Research, Hamburg University
  • M. Ternes

    • Max Planck Institute for Solid State Research, Stuttgart
  • M. Bouhassoune

    • Peter Gr\"unberg Institut and Institute for Advanced Simulation, Forschungszentrum J\"ulich and JARA
  • M. dos Santos Dias

    • Peter Gr\"unberg Institut and Institute for Advanced Simulation, Forschungszentrum J\"ulich and JARA
  • S. Lounis

    • Peter Gr\"unberg Institut and Institute for Advanced Simulation, Forschungszentrum J\"ulich and JARA
  • R. Wiesendanger

    • Institute for Nanostructure and Solid State Research, Hamburg University