Writing and reading of single magnetic domain per bit perpendicular patterned media
- 26 April 1999
- journal article
- Published by AIP Publishing in Applied Physics Letters
- Vol. 74 (17) , 2516-2518
- https://doi.org/10.1063/1.123885
Abstract
By fabricating patterned media with a large number of nanoscale single domain magnetic particles embedded in a nonmagnetic substrate, and by writing the magnetization for each of these particles in a desired direction, nonvolatile magnetic storage of information could reach densities much higher than what is currently thought possible for longitudinal continuous media. We have fabricated high aspect ratio perpendicular nickel columnar nanoparticles embedded in a hard Al2O3/GaAs substrate. We show that the magnetization states of the individual magnets can be controlled by demonstrating that prototype patterned “single magnetic domain per bit” data tracks can be written and read back using current magnetic information storage technology.Keywords
This publication has 14 references indexed in Scilit:
- Statistical modeling of charge collection in semiconductor gamma-ray spectrometersJournal of Applied Physics, 1999
- Magnetization switching of submicrometer Co dots induced by a magnetic force microscope tipPhysical Review B, 1998
- Vertical polarization of quantum magnets in high density arrays of nickel dots with small height-to-diameter ratioApplied Physics Letters, 1998
- Thermal stability of recorded information at high densitiesIEEE Transactions on Magnetics, 1997
- Lithographically patterned single-domain cobalt islands for high-density magnetic recordingJournal of Magnetism and Magnetic Materials, 1996
- Observation of the switching fields of individual Permalloy particles in nanolithographic arrays via magnetic force microscopyIEEE Transactions on Magnetics, 1991
- Hysteresis in lithographic arrays of permalloy particles: Experiment and theory (invited)Journal of Applied Physics, 1991
- Effect of signal discreteness on correlation functionsJournal of Applied Physics, 1991
- Magnetic imaging by ‘‘force microscopy’’ with 1000 Å resolutionApplied Physics Letters, 1987
- Digital magnetic recording theoryIEEE Transactions on Magnetics, 1974