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Electronic and magnetic structure of 4f atomic chains on Au(111) substrate

ORAL

Abstract

The study of low-dimensional magnetic systems has been greatly enhanced by the unique ability to create one- (1D) and two-dimensional atomic arrangements of magnetic atoms on a variety of substrates.  These studies have focused on transition metal atoms and islands deposited on insulating and metallic surfaces, including superconductors.  Scanning probe techniques have unveiled rich magnetic phase diagrams and different excitation spectra.  We direct here our attention to the study of 1D atomic chains formed by rare-earth 4f systems on the Au(111) surface, and study their electronic and magnetic configurations by different theoretical techniques.  Ab initio calculations using VASP with GGA+U and HSE functional, with and without spin-orbit interactions, allow for full structural relaxation of the system. 1D chains of Eu atoms on Au(111) surface show minimal charge transfer, reflecting physisorption of neutral Eu on gold.  Different spatial and magnetic configurations and relative spin orientations are parameterized in terms of a spin-Hamiltonian with collinear and non-collinear exchange interactions, as spin-orbit coupling on the substrate is substantial.  Typical exchange parameters of ~0.5 meV promise readily observable characteristics in low-temperature experiments.  Luttinger-Tisza and exact diagonalization approaches of the spin system predict interesting phase diagrams for these structures. 

Presenters

  • Sergio E Ulloa

    Ohio University

Authors

  • Sergio E Ulloa

    Ohio University

  • Vijay R Singh

    Department of Chemical Engineering, University of Illinois at Chicago, Chicago, Illinois 60608, United States, Materials Science Division, ANL, Argonne, IL, USA, Department of Physics, University of Illinois at Chicago, Chicago, IL, 60607, Univ Illinois at Chicago & MSD, ANL, University of Illinois at Chicago, Chemical Engineering Department, University of Illinois at Chicago, Department of Chemical Engineering, University of Illinois at Chicago, Chicago, Illinois 60608, United States, Materials Science Division, Argonne National Laboratory, IL, USA

  • Naveen Dandu

    Materials Science Division, Argonne National Laboratory, Argonne, IL, USA, Joint Center for Energy Storage Research (JCESR), Argonne, IL, USA, Univ Illinois at Chicago & MSD, ANL

  • Anh T Ngo

    Univ of Illinois at Chicago & MSD, ANL, University of Illinois at Chicago, Univeristy of Illinois at Chicago; Argonne National Laboratory, Argonne National Laboratory, Chemical Engineering Department, University of Illinois at Chicago

  • Larry A Curtiss

    Materials Science Division, Argonne National Laboratory, Argonne, IL, USA, Joint Center for Energy Storage Research (JCESR), Argonne, IL, USA., MSD, ANL, Argonne National Laboratory, Materials Science Division, Argonne National Laboratory