Title :
Time-Resolved Magnetization Dynamics and Damping Constant of Sputtered Co/Ni Multilayers
Author :
Kato, Toshihiko ; Matsumoto, Yuki ; Okamoto, Shusuke ; Kikuchi, Naoya ; Kitakami, O. ; Nishizawa, N. ; Tsunashima, Shigeru ; Iwata, Satoru
Author_Institution :
Dept. of Quantum Eng., Nagoya Univ., Nagoya, Japan
Abstract :
Co/Ni multilayers with a stack of Ta (2 nm)/[Co (tCo)/Ni (tNi)] N/Ta (30 nm) were prepared by dc magnetron sputtering, and their magnetization dynamics were measured by time-resolved magneto-optical Kerr effect (TRMOKE). The total thickness of the multilayer and perpendicular anisotropy were varied by changing the bilayer period d = tCo+ tNi and number of repeats N while tNi/tCo was kept at a constant of 2.5. The TRMOKE measurements show clear damped oscillation of the magnetization of Co/Ni multilayers after the pump pulse illumination, and the damping constant α of the Co/Ni multilayers was estimated from the TRMOKE waveform. The estimated α was found to be independent both on total thickness and anisotropy field of the multilayer and was estimated to be ~ 0.035 for all the multilayers. This means that the use of Ta capping and buffer layers is effective to evaluate intrinsic damping constant of the Co/Ni multilayer, and that independent control of α and perpendicular anisotropy are possible for the magnetic multilayers.
Keywords :
Kerr magneto-optical effect; buffer layers; cobalt; damping; magnetic multilayers; nickel; perpendicular magnetic anisotropy; sputter deposition; tantalum; Ta-Co-Ni-Ta; bilayer period; buffer layers; damped oscillation; damping constant; dc magnetron sputtering; magnetic multilayers; perpendicular anisotropy; pump pulse illumination; size 2 nm; size 30 nm; sputtered multilayers; tantalum capping; time-resolved magnetization dynamics; time-resolved magnetooptical Kerr effect; Anisotropic magnetoresistance; Damping; Magnetic multilayers; Magnetization; Magnetomechanical effects; Nickel; Nonhomogeneous media; Co/Ni multilayer; Gilbert damping; magnetization dynamics; time-resolved magneto-optical Kerr effect (TRMOKE);
Journal_Title :
Magnetics, IEEE Transactions on
DOI :
10.1109/TMAG.2011.2158082