Current-induced creation and dynamics of embedded magnetic skyrmion bags
Abstract
Abstract Magnetic skyrmion bags—vortex-like structures hosting multiple skyrmions with tunable topological charge ( Q )—hold significant promise for next-generation spintronic computing. However, while their creation using magnetic fields has been demonstrated, their direct electrical generation remains an outstanding challenge. Here, we report the direct current-induced formation and manipulation of embedded skyrmion bags in a FeGe nanoplate under zero magnetic field. Using in-situ Lorentz transmission electron microscopy, we capture the transformation of a distorted helical ground state into embedded skyrmion bags with diverse configurations, driven by nanosecond current pulses. Theoretical analysis indicates that this process is driven by the spin-transfer-torque-induced fracture of the helical state. Furthermore, we demonstrate electrically-induced transitions between skyrmion bags of different Q , leading to the stabilization of complex three-dimensional topological structures, including experimental signatures of magnetic monopoles and bobbers. Our work establishes a foundation for all-electrical control of high- Q topological spin textures and topological defects, paving the way for their application in functional spintronic devices.
Article Details
Authors (8)
Yaodong Wu
Jialiang Jiang
Lingyao Kong
Meng Shi
Shouguo Wang
Mingliang Tian
Haifeng Du
Jin Tang
Department of Chemistry, University of California