Title :
Domain Wall Switching: Optimizing the Energy Landscape
Author :
Lu, Zhihong ; Visscher, P.B. ; Butler, W.H.
Author_Institution :
Dept. of Phys. & Astron., Alabama Univ., Tuscaloosa, AL
fDate :
6/1/2007 12:00:00 AM
Abstract :
It has recently been suggested that exchange spring media offer a way to increase media density without causing thermal instability (superparamagnetism), by using a hard and a soft layer coupled by exchange. Victora has suggested a figure of merit xi=2Eb/mu0msHsw, the ratio of the energy barrier to that of a Stoner-Wohlfarth system with the same switching field, which is 1 for a Stoner-Wohlfarth (coherently switching) particle and 2 for an optimal two-layer composite medium. A number of theoretical approaches have been used for this problem (e.g., various numbers of coupled Stoner-Wohlfarth layers and continuum micromagnetics). In this paper we show that many of these approaches can be regarded as special cases or approximations to a variational formulation of the problem, in which the energy is minimized for fixed magnetization. The results can be easily visualized in terms of a plot of the energy E as a function of magnetic moment mz, in which both the switching field [the maximum slope of E(mz)] and the stability (determined by the energy barrier DeltaE) are geometrically visible. In this formulation we can prove a rigorous limit on the figure of merit xi, which can be no higher than 4. We also show that a quadratic anistropy suggested by Suess comes very close to this limit.
Keywords :
exchange interactions (electron); magnetic domain walls; magnetic switching; micromagnetics; permanent magnets; perpendicular magnetic anisotropy; perpendicular magnetic recording; soft magnetic materials; Stoner-Wohlfarth particle; continuum micromagnetics; domain wall switching; energy landscape optimization; exchange coupling; exchange spring media; figure of merit; hard layers; magnetization; media density; quadratic anisotropy; soft layers; switching field; Anisotropic magnetoresistance; Astronomy; Coercive force; Energy barrier; Magnetic moments; Magnetic switching; Magnetization; Physics; Stability; Visualization; Anisotropy-gradient media; exchange-coupled media; magnetic domain walls; magnetic switching; perpendicular magnetic recording;
Journal_Title :
Magnetics, IEEE Transactions on
DOI :
10.1109/TMAG.2007.893630