Abstract
Skyrmioniums are protected topological textures that have potential applications in spintronics. This study demonstrates the feasibility of simulating an artificial neuron device with leaky-integrate-and-fire (LIF) functionality on a ferromagnetic racetrack using micromagnetic simulations. First, we determine the magnetic field range required to stabilize a skyrmionium. Then, we show that applying a magnetic field gradient enables the controlled displacement of a skyrmionium along the racetrack. Our results indicates that the displacement speed increases with a stronger gradient intensity or a lower damping constant. These findings agree with those predicted by the Thiele equation. We also demonstrate that applying current pulses along with a magnetic field gradient makes it possible to emulate LIF functionality on a racetrack, using skyrmioniums as a fundamental building block.
| Original language | English |
|---|---|
| Article number | 173321 |
| Journal | Journal of Magnetism and Magnetic Materials |
| Volume | 629 |
| DOIs | |
| State | Published - 1 Oct 2025 |
Keywords
- Artificial neuron device
- Leaky integrate fire
- Magnetic field gradient
- Micromagnetic simulation
- Skyrmionium
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