Title :
Investigation of Microscopic Demagnetization Process Using Magneto-Optical Microscopy
Author :
Duy-Truong Quach ; Sang-Hyuk Lee ; Dong-Hyun Kim
Author_Institution :
Dept. of Phys., Chungbuk Nat. Univ., Cheongju, South Korea
Abstract :
Detailed demagnetization process depending on various external field profiles has been investigated using a magneto-optical Kerr/Faraday microscopy for a Co/Pt multilayer film with a perpendicular magnetic anisotropy. By quantitatively analyzing local magnetic domain structures, we propose that it is possible to define a parameter η, which represents how well the demagnetization has been carried out microscopically. The degree of demagnetization η, defined by a ratio between the final demagnetized image intensity and saturated image intensity, has been experimentally found to significantly reflect the microscopic demagnetization behavior. Dependences of η on the maximum amplitude, decreased step size, and effective sweeping rate of alternating demagnetizing field have been systematically investigated together with a direct microscopic observation of magnetic domain structures.
Keywords :
Faraday effect; Kerr magneto-optical effect; cobalt; demagnetisation; magnetic domains; magnetic multilayers; magnetic thin films; optical microscopy; perpendicular magnetic anisotropy; platinum; Co-Pt; demagnetized image intensity; demagnetizing field; local magnetic domain structures; magneto-optical Kerr-Faraday microscopy; microscopic demagnetization process; multilayer film; perpendicular magnetic anisotropy; saturated image intensity; Demagnetization; Magnetic domains; Magnetic force microscopy; Magnetic hysteresis; Microscopy; Nonhomogeneous media; Perpendicular magnetic anisotropy; Co/Pt multilayer; demagnetization process; magnetic domain; magneto-optical microscopy;
Journal_Title :
Magnetics, IEEE Transactions on
DOI :
10.1109/TMAG.2014.2303205