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Ziqian Cui

Publications and source records attributed to Ziqian Cui.

2 recordsLinked to original sources

Deterministic switching of perpendicular magnetization using N\'eel order-engineered out-of-plane spin in a single ferromagnet

Perpendicular switching of a ferromagnet induced by spin torques is crucial for building high density spin-based memory and logic devices, where out-of-plane spin polarization ($\sigma_z$) has become a long sought-after goal for deterministic switching without assisted magnetic fields. Here we report the observation of$\sigma_z$ and resultant field-free perpendicular switching in a single ferromagnet without any spin torque generation layers, where $\sigma_z$ is achieved through the self-generated spin polarization in the ferromagnet that is engineered by the N\'eel order of an adjacent antiferromagnetic insulator. We further demonstrated that $\sigma_z$ emerges when the self-generated spin polarization is collinear with the N\'eel vector, where the spin current is reflected back to the ferromagnet, along with rotated spin polarization toward the out-of-plane direction to induce $\sigma_z$. Since no current is shunted by antiferromagnetic insulators and the N\'eel order does not rely on single-crystalline materials, these results may provide a CMOS-compatible solution for constructing energy-efficient field-free spintronic devices.

physics.app-ph

Sub-nanosecond in-plane magnetization switching induced by field-like spin-orbit torques from ferromagnets

Spin-orbit torques (SOTs) generated in SOT-material/ferromagnet structures are classified as damping-like (DL) and field-like (FL) torques for current-driven magnetization switching. It is well known that both DL- and FL-SOTs originate from the SOT-material and DL-SOT dominates the current-driven switching process while FL-SOT contributes limitedly, resulting in an incubation time (several nanoseconds) during collinear magnetization switching with the spin polarization because of the DL attributes. Here we report a FL-SOT originated from the ferromagnet, different from the origin of DL-SOT, and demonstrate that it dominates the collinear magnetization switching. We show that the FL-SOT and resultant collinear switching can be modulated, one order of magnitude and sign reversal, by controlling the ferromagnet. Because of no incubation time and higher charge-to-spin efficiencies in the FL switching, we further show that the switching time can be down to 200 ps with one order lower critical switching current density compared to DL switching. These results indicate that the FL switching may provide a practical solution for magnetic memory in speed-priority cache applications.

physics.app-ph