Three-dimensional simulation of the disturbance of magnetic domain walls by magnetic force microscope tips
Siqi Huo, J.E.L. Bishop, J.W. Tucker, W.M. Rainforth, H.A. Davies
Abstract
Siqi Huo, J.E.L. Bishop, J.W. Tucker, W.M. Rainforth, H.A. Davies
Abstract
The micromagnetics of the interaction of a strong 3D magnetic force microscope tip with a 180° asymmetric Bloch domain wall in an 80 nm {100} iron film has been simulated numerically using cubic elements on a 3D lattice. The distortion of the wall is found to be quite well localized on the scale of the tip dimensions, 60×60 nm2. The force of attraction between tip and film and the changes in self-energy of the wall and in the energy of the tip-sample system have been calculated for various positions of the tip. The strong attraction between tip and sample is slightly reduced (∼5%) when the tip is directly over the central vortex in the wall.
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The micromagnetics of the interaction of a strong 3D magnetic force microscope tip with a 180° asymmetric Bloch domain wall in an 80 nm {100} iron film has been simulated numerically using cubic elements on a 3D lattice. The distortion of the wall is found to be quite well localized on the scale of the tip dimensions, 60×60 nm2. The force of attraction between tip and film and the changes in self-energy of the wall and in the energy of the tip-sample system have been calculated for various positions of the tip. The strong attraction between tip and sample is slightly reduced (∼5%) when the tip is directly over the central vortex in the wall.
Key concepts: Magnetic force microscope, Micromagnetics, Magnetic domain, Materials science, Domain wall (magnetism), Condensed matter physics, Vortex, Microscope