4.0 Article

Formation of 360° Domain Wall in a Ferromagnetic Nanowire by Splitting and Recombination of 180° Domain Wall

Publisher

NATL ACAD SCIENCES INDIA
DOI: 10.1007/s40010-023-00837-9

Keywords

Ferromagnetic nanowire; Anti-dot; 360(degrees) domain wall; Domain wall pinning; Chirality

Ask authors/readers for more resources

In this work, the motion of vortex domain wall (VDW) in a ferromagnetic nanowire with a rectangular anti-dot was studied using micromagnetic simulations. It was found that the anti-dot can act as a pinning site, causing the VDW to either split or transform into a transverse domain wall (TDW), depending on the width of the anti-dot. The splitting and recombination of the VDW resulted in the formation of a 360(degrees) DW. The energy distribution across the TDW was found to play a crucial role in the splitting of the DW and the formation of the 360(degrees) DW. The DW splitting field showed a crossover as a function of the anti-dot width, which was attributed to the dependence of pinning field on the DW size.
The domain wall (DW) motion in ferromagnetic nanostructures is of paramount importance for realizing high density magnetic data storage applications. In this work, we have investigated the vortex domain wall (VDW) motion in a ferromagnetic nanowire with a rectangular anti-dot using micromagnetic simulations. We found that the anti-dot acts as a pinning site resulting in either splitting or transformation of VDW to a transverse DW depending on the anti-dot width. The DW splitting and recombination result in the formation of a 360(degrees) DW from a single 180(degrees) VDW. The whole process follows the conservation of the topological charge associated with the DWs in the system. We found that energy distribution across the transverse domain wall (TDW) plays an important role in both the DW splitting and formation of 360(degrees) DW. The DW splitting field has shown a crossover as a function of anti-dot width which is attributed to the dependance of pinning field on the DW size as seen by the pinning site. This work reveals a novel method to stabilize 360(degrees) DW in a simple, compact and experimentally realizable ferromagnetic nanostructure under the application of a linear magnetic field.

Authors

I am an author on this paper
Click your name to claim this paper and add it to your profile.

Reviews

Primary Rating

4.0
Not enough ratings

Secondary Ratings

Novelty
-
Significance
-
Scientific rigor
-
Rate this paper

Recommended

No Data Available
No Data Available