English

Zero-field magnetization reversal of two-body Stoner particles with dipolar interaction

Mesoscale and Nanoscale Physics 2015-05-18 v1 Materials Science

Abstract

Nanomagnetism has recently attracted explosive attention, in particular, because of the enormous potential applications in information industry, e.g. new harddisk technology, race-track memory[1], and logic devices[2]. Recent technological advances[3] allow for the fabrication of single-domain magnetic nanoparticles (Stoner particles), whose magnetization dynamics have been extensively studied, both experimentally and theoretically, involving magnetic fields[4-9] and/or by spin-polarized currents[10-20]. From an industrial point of view, important issues include lowering the critical switching field HcH_c, and achieving short reversal times. Here we predict a new technological perspective: HcH_c can be dramatically lowered (including Hc=0H_c=0) by appropriately engineering the dipole-dipole interaction (DDI) in a system of two synchronized Stoner particles. Here, in a modified Stoner-Wohlfarth (SW) limit, both of the above goals can be achieved. The experimental feasibility of realizing our proposal is illustrated on the example of cobalt nanoparticles.

Keywords

Cite

@article{arxiv.1005.1828,
  title  = {Zero-field magnetization reversal of two-body Stoner particles with dipolar interaction},
  author = {Z. Z. Sun and Alexander Lopez and John Schliemann},
  journal= {arXiv preprint arXiv:1005.1828},
  year   = {2015}
}

Comments

5 pages, 4 figures