| Literature DB >> 12750516 |
P Gambardella1, S Rusponi, M Veronese, S S Dhesi, C Grazioli, A Dallmeyer, I Cabria, R Zeller, P H Dederichs, K Kern, C Carbone, H Brune.
Abstract
The isotropic magnetic moment of a free atom is shown to develop giant magnetic anisotropy energy due to symmetry reduction at an atomically ordered surface. Single cobalt atoms deposited onto platinum (111) are found to have a magnetic anisotropy energy of 9 millielectron volts per atom arising from the combination of unquenched orbital moments (1.1 Bohr magnetons) and strong spin-orbit coupling induced by the platinum substrate. By assembling cobalt nanoparticles containing up to 40 atoms, the magnetic anisotropy energy is further shown to be dependent on single-atom coordination changes. These results confirm theoretical predictions and are of fundamental value to understanding how magnetic anisotropy develops in finite-sized magnetic particles.Entities:
Year: 2003 PMID: 12750516 DOI: 10.1126/science.1082857
Source DB: PubMed Journal: Science ISSN: 0036-8075 Impact factor: 47.728