Title :
Dependence of switching time on temperature, applied field, and material parameters
Author :
Fukushima, H. ; Uesaka, Y. ; Nakatani, Y. ; Hayashi, N.
fDate :
9/1/2002 12:00:00 AM
Abstract :
The switching time of a single-domain particle with uniaxial anisotropy subjected to an applied field along the easy axis is studied by solving Brown´s Fokker-Planck equation numerically. The equation is modified in order to be integrated by a finite-difference method. The validity of this method is verified by comparing the frequency prefactors in the exponential decay calculated by this method with the values from Brown´s formula for the prefactor. Switching times for several values of the applied field and the temperature are calculated. Curves of the inverse of the switching time are fitted to a simple expression by using a least-squares method. The expression consists of two terms: a linear function of the applied field and a function proportional to the square root of the temperature. The dependence of the switching time on the magnetization, the volume of the particle, the anisotropy field, the Gilbert´s damping constant, and the gyromagnetic constant is also presented.
Keywords :
Fokker-Planck equation; finite difference methods; g-factor; least squares approximations; magnetic anisotropy; magnetic particles; magnetic switching; magnetisation reversal; probability; Boltzmann distribution; Fokker-Planck equation; Gilbert´s damping constant; applied field dependence; easy axis applied field; exponential decay; finite-difference method; frequency prefactors; gyromagnetic constant; high-energy-barrier approximation; least-squares method; linear function; magnetic particles; magnetization reversal; material parameters dependence; particle volume; recording density; scaled time; single-domain particle; switching probability; switching time; temperature dependence; uniaxial anisotropy; Anisotropic magnetoresistance; Damping; Equations; Finite difference methods; Frequency; Gyromagnetism; Magnetic recording; Magnetic switching; Magnetization reversal; Temperature dependence;
Journal_Title :
Magnetics, IEEE Transactions on
DOI :
10.1109/TMAG.2002.803593