Confined Dissipative Droplet Solitons in Spin-Valve Nanowires with Perpendicular Magnetic Anisotropy
Journal article, 2014

Magnetic dissipative droplets are localized, strongly nonlinear dynamical modes excited in nanocontact spin valves with perpendicular magnetic anisotropy. These modes find potential application in nanoscale structures for magnetic storage and computation, but dissipative droplet studies have so far been limited to extended thin films. Here, numerical and asymptotic analyses are used to demonstrate the existence and properties of novel solitons in confined structures. As a nanowire's width is decreased with a nanocontact of fixed size at its center, the observed modes undergo transitions from a fully localized two-dimensional droplet into a two-dimensional droplet edge mode and then a pulsating one-dimensional droplet. These solitons are interpreted as dissipative versions of classical, conservative solitons, allowing for an analytical description of the modes and the mechanisms of bifurcation. The presented results open up new possibilities for the study of low-dimensional solitons and droplet applications in nanostructures.

ELECTRIC-CURRENT

MULTILAYER

NANO-OSCILLATORS

LOGIC

DOMAIN-WALL MOTION

DRIVEN

WAVES

TORQUE

EXCITATION

POLARIZED CURRENT

Author

Ezio Iacocca

University of Gothenburg

Randy K. Dumas

University of Gothenburg

L. Bookman

M. Mohseni

Sunjae Chung

University of Gothenburg

M. A. Hoefer

Johan Åkerman

University of Gothenburg

Physical Review Letters

0031-9007 (ISSN) 1079-7114 (eISSN)

Vol. 112 4

Subject Categories

Physical Sciences

DOI

10.1103/PhysRevLett.112.047201

More information

Created

10/10/2017