Spin-torque switching mechanisms of perpendicular magnetic tunnel junctions nanopillars
arXiv:2003.13875 · doi:10.1063/5.0046596
Abstract
Understanding the magnetization dynamics induced by spin transfer torques in perpendicularly magnetized magnetic tunnel junction nanopillars and its dependence on material parameters is critical to optimizing device performance. Here we present a micromagnetic study of spin-torque switching in a disk-shaped element as a function of the free layer's exchange constant and disk diameter. The switching is shown to generally occur by 1) growth of the magnetization precession amplitude in the element center; 2) an instability in which the reversing region moves to the disk edge, forming a magnetic domain wall; and 3) the motion of the domain wall across the element. For large diameters and small exchange, step 1 leads to a droplet with a fully reversed core that experiences a drift instability (step 2). While in the opposite case (small diameters and large exchange), the central region of the disk is not fully reversed before step 2 occurs. The origin of the micromagnetic structure is shown to be the disk's non-uniform demagnetization field. Faster, more coherence and energy efficient switching occur with larger exchange and smaller disk diameters, showing routes to increase device performance.
References in corpus (4)
- Theory for a dissipative droplet soliton excited by a spin torque nanocontact
- Size-dependence of nanosecond-scale spin-torque switching in perpendicularly magnetized tunnel junctions
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Cited by in corpus (6)
- Maximizing Spin-Orbit Torque Generated by the Spin Hall Effect of Pt
- Spin-transfer and spin-orbit torques in the Landau-Lifshitz-Gilbert equation
- Magnetic Droplet Solitons
- A Perspective on Electrical Generation of Spin Current for Magnetic Random Access Memories
- Thermal effects in spin torque switching of perpendicular magnetic tunnel junctions at cryogenic temperatures
- Deterministic and stochastic aspects of current-induced magnetization reversal in perpendicular nanomagnets