Title :
Dynamical spin injection induced by FMR heating effect in CoFeAl strip
Author :
Yamanoi, K. ; Yokotani, Y. ; Yakata, S. ; Kimura, T.
Author_Institution :
Kyushu Univ., Hakozaki, Japan
Abstract :
Dynamical spin injection is attractive mean for generating and controlling the spin current without the use of the electricity. So far, the mechanism of the dynamical spin injection is attributed to the spin pumping induced by the ferromagnetic resonance (FMR). Although its quantitative evaluation is not simple because of the coexistence of the dc and ac spin pumping currents, the experimental results related to the spin pumping are mainly analyzed only by focusing on the dc spin current. Since the magnitude of the ac spin current is much larger than that of the dc spin current, the consideration of the ac spin current may be important. Apart from the spin pumping, another driving mechanism for the dynamical spin injection, we are interested in the heating effect during the resonant precession. When the temperature gradient exists across the ferromagnet/ nonmagnet interface, the spin current is generated through the thermal spin injection (spin-dependent Seebeck effect)[1,2]. In this presentation, we develop the evaluation method of the FMR heating effect for the micro- or nano-sized ferromagnet and investigate the influence of the dynamical spin injection on the magnetization dynamics.
Keywords :
Seebeck effect; aluminium alloys; cobalt alloys; ferromagnetic materials; ferromagnetic resonance; heat treatment; iron alloys; magnetisation; nanostructured materials; spin polarised transport; CoFeAl; CoFeAl strip; FMR; FMR heating effect; ac spin pumping currents; dc spin pumping currents; dynamical spin injection; ferromagnet-nonmagnet interface; ferromagnetic resonance; magnetization dynamics; microsized ferromagnet; nanosized ferromagnet; spin current; spin pumping; spin-dependent Seebeck effect; temperature gradient; thermal spin injection; Arrays; Coplanar waveguides; Heating; Magnetic resonance; Radio frequency; Resistance; Spin polarized transport;
Conference_Titel :
Magnetics Conference (INTERMAG), 2015 IEEE
Conference_Location :
Beijing
Print_ISBN :
978-1-4799-7321-7
DOI :
10.1109/INTMAG.2015.7156977