Abstract
The stability of structures with nontrivial topology is a subject of great interest, both from fundamental and technological perspectives. The topology of a magnetic vortex, for example, results in high stability of the vortex core polarity, which is attractive for applications. This high stability, however, greatly impedes the required deterministic polarity switching, which is typically only achieved with large magnetic fields or strong dynamic driving. Here, we show that the interaction between the vortex core and manufactured nanoscale defects in the magnetic material lowers the required driving strength for core polarity reversal by more than an order of magnitude. We excite vortex dynamics in thin permalloy disks, and map the two-dimensional (2D) vortex core trajectory using 3D time-resolved Kerr microscopy. In pristine samples, we observe normal gyrotropic motion of the vortex core. After laser-induced generation of defects, however, we observe repeated vortex core reversal at much-reduced driving strength. Micromagnetic simulations reveal how local reduction of exchange coupling and saturation magnetization can create vortex core reversal sites for deterministic vortex core switching.
Original language | English |
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Article number | 034049 |
Journal | Physical Review Applied |
Volume | 16 |
Issue number | 3 |
DOIs | |
State | Published - Sep 2021 |
Externally published | Yes |
Funding
O.H. acknowledges funding from the US Department of Energy, Office of Science, Basic Energy Sciences Division of Materials Sciences and Engineering. We gratefully acknowledge the computing resources provided on Bebop and Blues, high-performance computing clusters operated by the Laboratory Computing Resource Center at Argonne National Laboratory. M.M. proposed the idea of reversal at defects, constructed the apparatus, and carried out the experiment, J.B. advised on the sample fabrication and experiment, and O.H. performed micromagnetic simulations. M.M., J.B., and O.H. participated in data analysis and editing the manuscript. J.T. fabricated samples.