Title :
Micromagnetics of Percolated Perpendicular Medium for 1 Tb/in

and Beyond
Author :
Tang, Yuhui ; Zhu, Jian-Gang
Author_Institution :
Dept. of Electr. & Comput. Eng., Carnegie Mellon Univ., Pittsburgh, PA
Abstract :
A fully exchange coupled perpendicular medium with densely distributed nonmagnetic pinning sites has been proposed. In the novel microstructure configuration, the dense domain wall pinning sites enable the perpendicular medium to obtain narrow transitions and small transition noise. Using the micromagnetic modeling, the macromagnetic properties and recording performances of the novel medium have been investigated. The results show that the medium transition noise can be optimized with a moderate exchange coupling constant. The dynamic recording processes are studied with different damping constants and recording field amplitudes. Our study indicates that the switching time of the percolated medium is smaller than 1 ns even with low switching field and small damping constant
Keywords :
magnetic domain walls; magnetic recording noise; magnetic switching; magnetic transitions; micromagnetics; percolation; perpendicular magnetic recording; damping constants; dense domain wall pinning sites; dynamic recording processes; exchange coupled perpendicular medium; exchange coupling constant; macromagnetic properties; medium transition noise; micromagnetic modeling; micromagnetics; microstructure configuration; nonmagnetic pinning sites; percolated perpendicular medium; recording performances; Anisotropic magnetoresistance; Crystallization; Damping; Data storage systems; Jitter; Magnetic noise; Micromagnetics; Microstructure; Signal to noise ratio; Transistors; Effect of damping; exchange coupling; perpendicular medium; switching time; transition noise;
Journal_Title :
Magnetics, IEEE Transactions on
DOI :
10.1109/TMAG.2006.878688