TY - JOUR
T1 - Correlation between spin structure oscillations and domain wall velocities
AU - Bisig, André
AU - Stärk, Martin
AU - Mawass, Mohamad Assaad
AU - Moutafis, Christoforos
AU - Rhensius, Jan
AU - Heidler, Jakoba
AU - Büttner, Felix
AU - Noske, Matthias
AU - Weigand, Markus
AU - Eisebitt, Stefan
AU - Tyliszczak, Tolek
AU - Van Waeyenberge, Bartel
AU - Stoll, Hermann
AU - Schütz, Gisela
AU - Kläui, Mathias
PY - 2013
Y1 - 2013
N2 - Magnetic sensing and logic devices based on the motion of magnetic domain walls rely on the precise and deterministic control of the position and the velocity of individual magnetic domain walls in curved nanowires. Varying domain wall velocities have been predicted to result from intrinsic effects such as oscillating domain wall spin structure transformations and extrinsic pinning due to imperfections. Here we use direct dynamic imaging of the nanoscale spin structure that allows us for the first time to directly check these predictions. We find a new regime of oscillating domain wall motion even below the Walker breakdown correlated with periodic spin structure changes. We show that the extrinsic pinning from imperfections in the nanowire only affects slow domain walls and we identify the magnetostatic energy, which scales with the domain wall velocity, as the energy reservoir for the domain wall to overcome the local pinning potential landscape.
AB - Magnetic sensing and logic devices based on the motion of magnetic domain walls rely on the precise and deterministic control of the position and the velocity of individual magnetic domain walls in curved nanowires. Varying domain wall velocities have been predicted to result from intrinsic effects such as oscillating domain wall spin structure transformations and extrinsic pinning due to imperfections. Here we use direct dynamic imaging of the nanoscale spin structure that allows us for the first time to directly check these predictions. We find a new regime of oscillating domain wall motion even below the Walker breakdown correlated with periodic spin structure changes. We show that the extrinsic pinning from imperfections in the nanowire only affects slow domain walls and we identify the magnetostatic energy, which scales with the domain wall velocity, as the energy reservoir for the domain wall to overcome the local pinning potential landscape.
UR - http://www.scopus.com/inward/record.url?scp=84883274697&partnerID=8YFLogxK
U2 - 10.1038/ncomms3328
DO - 10.1038/ncomms3328
M3 - Article
AN - SCOPUS:84883274697
SN - 2041-1723
VL - 4
JO - Nature Communications
JF - Nature Communications
M1 - 2328
ER -