Exchange-Biased NiO-Co Nanofaceted Bilayers Grown on MgO (110)

Abstract

We have sputter-grown self-organised faceted NiO-Co epitaxial bilayers on MgO(110). Due to very close lattice parameters, NiO adopts the same NaCl crystallographic structure as the substrate but it minimises its surface energy growing in a stripe-shaped morphology elongated along 001 MgO direction. The Co layers then deposited on NiO adopt a fcc structure. They consist of a set of connected nanowires whose height is about 50 A, length is near to 1 micrometer and lateral periodicity 100 A. Magnetic properties of the Co layers were investigated by magneto-optical Kerr effect from 10 K to room temperature. They are dominated by a strong shape-induced uniaxial anisotropy and exchange coupling with the antiferromagnetic underlayer. Magnetisation loops recorded along the easy axis exhibit a perfect squareness and switch in a field range smaller than 10 Oe. Transverse measurements indicate that switching occurs by domain nucleation and/or domain wall propagation. On the contrary, close to the 110 hard axis, magnetic switching occurs by coherent rotation. The bi-stable Co magnetisation state along its easy axis has been used for ordering the NiO spins configuration from room temperature to 10 K. Sign and value of exchange bias induced by such a thermal treatment can be modulated thanks to a wide magnetocrystalline or local exchange path energies distributions.

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Document Details

Document Type
Technical Report
Publication Date
Apr 01, 2001
Accession Number
ADP012266

Entities

People

  • B. Warot
  • E. Snoeck
  • J. C. Ousset
  • J. F. Bobo
  • S. Dubourg

Organizations

  • National Center for Scientific Research

Tags

Communities of Interest

  • Advanced Electronics

DTIC Thesaurus Topics

  • Domain Walls
  • Electron Beam Lithography
  • Electron Microscopy
  • Films
  • Kerr Effects
  • Kerr Magneto-Optic Effect
  • Magnetic Fields
  • Magnetic Properties
  • Materials
  • Materials Processing
  • Microscopes
  • Microscopy
  • Nanowires
  • Optical Materials
  • Thick Films
  • Thin Films
  • Transmission Electron Microscopy

Fields of Study

  • Physics

Readers

  • Materials Science and Engineering.
  • Quantum Dot Semiconductor Device Photonics and Graphene Optoelectronic Materials and THz Physics.
  • Quantum spin resonance or Electron Paramagnetic Resonance spectroscopy.