TY - JOUR
T1 - Layer thickness dependence of the current-induced effective field vector in Ta|CoFeB|MgO
AU - Kim, Junyeon
AU - Sinha, Jaivardhan
AU - Hayashi, Masamitsu
AU - Yamanouchi, Michihiko
AU - Fukami, Shunsuke
AU - Suzuki, Tetsuhiro
AU - Mitani, Seiji
AU - Ohno, Hideo
N1 - Funding Information:
The authors acknowledge helpful discussions with H-W. Lee, K-J. Lee and T. Taniguchi. We thank M. Kodzuka, T. Ohkubo and K. Hono for their support on film characterization. This work was partly supported by the Japan Society for the Promotion of Science (JSPS) though its ‘Funding Program for World-Leading Innovative R&D on Science and Technology (FIRST program)’.
PY - 2013/3
Y1 - 2013/3
N2 - Current-induced effective magnetic fields can provide efficient ways of electrically manipulating the magnetization of ultrathin magnetic heterostructures. Two effects, known as the Rashba spin orbit field and the spin Hall spin torque, have been reported to be responsible for the generation of the effective field. However, a quantitative understanding of the effective field, including its direction with respect to the current flow, is lacking. Here we describe vector measurements of the current-induced effective field in Ta|CoFeB|MgO heterostructrures. The effective field exhibits a significant dependence on the Ta and CoFeB layer thicknesses. In particular, a 1 nm thickness variation of the Ta layer can change the magnitude of the effective field by nearly two orders of magnitude. Moreover, its sign changes when the Ta layer thickness is reduced, indicating that there are two competing effects contributing to it. Our results illustrate that the presence of atomically thin metals can profoundly change the landscape for controlling magnetic moments in magnetic heterostructures electrically.
AB - Current-induced effective magnetic fields can provide efficient ways of electrically manipulating the magnetization of ultrathin magnetic heterostructures. Two effects, known as the Rashba spin orbit field and the spin Hall spin torque, have been reported to be responsible for the generation of the effective field. However, a quantitative understanding of the effective field, including its direction with respect to the current flow, is lacking. Here we describe vector measurements of the current-induced effective field in Ta|CoFeB|MgO heterostructrures. The effective field exhibits a significant dependence on the Ta and CoFeB layer thicknesses. In particular, a 1 nm thickness variation of the Ta layer can change the magnitude of the effective field by nearly two orders of magnitude. Moreover, its sign changes when the Ta layer thickness is reduced, indicating that there are two competing effects contributing to it. Our results illustrate that the presence of atomically thin metals can profoundly change the landscape for controlling magnetic moments in magnetic heterostructures electrically.
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U2 - 10.1038/nmat3522
DO - 10.1038/nmat3522
M3 - Article
AN - SCOPUS:84875461126
SN - 1476-1122
VL - 12
SP - 240
EP - 245
JO - Nature Materials
JF - Nature Materials
IS - 3
ER -