Universal chiral-triggered magnetization switching in confined nanodots
Eduardo Martinez, Luis Torres, Noel Perez, Maria Auxiliadora, Hernandez, Victor Raposo, Simone Moretti

TL;DR
This paper demonstrates that Dzyaloshinskii-Moriya interaction (DMI) induces a universal chiral magnetization switching mechanism in nanoscale ferromagnetic dots, advancing understanding of chiral spin textures for spintronic devices.
Contribution
It reveals the significant role of DMI in promoting a universal chiral reversal process in confined nanodots, a phenomenon not observed in conventional materials.
Findings
DMI promotes chiral, non-uniform magnetization reversal.
Switching involves domain wall nucleation and propagation.
Universal behavior observed across nanoscale samples.
Abstract
Spin orbit interactions are rapidly emerging as the key for enabling efficient current-controlled spintronic devices. Much work has focused on the role of spin-orbit coupling at heavy metal/ferromagnet interfaces in generating current-induced spin-orbit torques. However, the strong influence of the spin-orbit-derived Dzyaloshinskii-Moriya interaction (DMI) on spin textures in these materials is now becoming apparent. Recent reports suggest DMI-stabilized homochiral domain walls (DWs) can be driven with high efficiency by spin torque from the spin Hall effect. However, the influence of the DMI on the current-induced magnetization switching has not been explored nor is yet well-understood, due in part to the difficulty of disentangling spin torques and spin textures in nano-sized confined samples. Here we study the magnetization reversal of perpendicular magnetized ultrathin dots, and…
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Taxonomy
TopicsMagnetic properties of thin films · Multiferroics and related materials · Physics of Superconductivity and Magnetism
