Probing activation energy barrier distribution for reversal of strongly exchange-coupled magnetic multilayer thin films
Résumé
We demonstrate a measurement technique with zero-applied magnetic field to deduce and spatially map the activation energy barrier distribution of strongly exchange-coupled magnetic-multilayer thin films, which is otherwise inaccessible with conventional methods in the presence of an applied magnetic field. Our technique involves the analysis of magnetic force microscopy images of magnetic microwires, whose magnetizations have been subject to thermal decay due to Joule heating from applied nanosecond scale current pulses. Fitting the results of such measurements on CoNi/Pd magnetic-multilayer microwires to a modified Arrhenius–Neel formalism yields an energy barrier distribution with 8% sigma, in good agreement with complementary fits of the switching-field-distribution measurements on patterned CoNi/Pd magnetic-multilayer islands. In order to achieve reliable operation of nanoscale magnetic devices, it is paramount to understand the role of spatial inhomogeneity of intrinsic magnetic properties, such as mag-netization, exchange, anisotropy, and activation energy for reversal in the overall performance of these devices. This evaluation is also necessary to separately diagnose the complementary contributions to the element-to-element performance variations from extrinsic ͑i.e., patterning induced͒ factors, such as ion-mill edge damage 1 and sidewall oxidation effects. 2
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