Unconventional magnetisation texture in graphene / cobalt hybrids
arXiv:1508.06548
Abstract
Magnetic domain structure and spin-dependent reflectivity measurements on cobalt thin films intercalated at the graphene / Ir(111) interface are investigated using spin-polarised low-energy electron microscopy. We find that graphene-covered cobalt films have surprising magnetic properties. Vectorial imaging of magnetic domains reveals an unusually gradual thickness-dependent spin reorientation transition, in which magnetisation rotates from out-of-the-film plane to the in-plane direction by less than 10 per cobalt monolayer. During this transition, cobalt films have a meandering spin texture, characterised by a complex, three-dimensional, wavy magnetisation pattern. In addition, spectroscopy measurements indicate that the electronic band structure of the unoccupied states is essentially spin-independent already a few electron-Volts above the vacuum level. These properties strikingly differ from those of pristine cobalt films and could open new prospects in surface magnetism.
4 figures
References in corpus (18)
- The electronic properties of graphene
- 30 inch Roll-Based Production of High-Quality Graphene Films for Flexible Transparent Electrodes
- Ultrahigh electron mobility in suspended graphene
- Detection of Individual Gas Molecules Absorbed on Graphene
- Graphene Photonics and Optoelectronics
- Suspended Graphene: a bridge to the Dirac point
- Graphene plasmonics
- Doping graphene with metal contacts
- Graphene Spintronics
- Graphite and graphene as perfect spin filters
- Highly efficient spin transport in epitaxial graphene on SiC
- Defects of graphene on Ir(111): rotational domains and ridges
- Induced magnetism of carbon atoms at the graphene/Ni(111) interface
- Graphene-Passivated Nickel as an Oxidation-Resistant Electrode for Spintronics
- Direct observation of a highly spin-polarized organic spinterface at room temperature
- Magnetoresistive junctions based on epitaxial graphene and hexagonal boron nitride
- Electronic structure and magnetic properties of the graphene/Fe/Ni(111) intercalation-like system
- Cobalt intercalation at the graphene/iridium(111) interface: influence of rotational domains, wrinkles and atomic steps