Selective control of vortex polarities by microwave field in two robustly synchronized spin-torque nano-oscillators
arXiv:1711.02285 · doi:10.1063/1.5012768
Abstract
Manipulating operation states of coupled spin-torque nano-oscillators (STNOs), including their synchronization, is essential for applications such as complex oscillator networks. In this work we experimentally demonstrate selective control of two coupled vortex STNOs through microwave-assisted switching of their vortex core polarities. First, the two oscillators are shown to synchronize due to dipolar interaction in a broad frequency range tuned by external biasing field. Coherent output is demonstrated along with strong linewidth reduction. Then, we show individual vortex polarity control of each oscillator, which leads to synchronization/desynchronization due to accompanied frequency shift. Our methods can be easily extended to multiple-element coupled oscillator networks.
References in corpus (7)
- Generation linewidth of an auto-oscillator with a nonlinear frequency shift: Spin-torque nano-oscillator
- Coupling efficiency for phase locking of a spin transfer oscillator to a microwave current
- Bistability of vortex core dynamics in a single perpendicularly magnetized nano-disk
- Universal criterion and phase diagram for switching a magnetic vortex core in soft magnetic nanodots
- Low-frequency vortex dynamic susceptibility and relaxation in mesoscopic ferromagnetic dots
- Phase locking dynamics of dipolarly coupled vortex-based spin transfer oscillators
- Optimal control of vortex core polarity by resonant microwave pulses