Current-Induced Magnetization Switching Across a Nearly Room-Temperature Compensation Point in an Insulating Compensated Ferrimagnet.
Yan LiDongxing ZhengChen LiuChen-Hui ZhangBin FangAitian ChenYinchang MaAurélien ManchonXingzhong ZhaoPublished in: ACS nano (2022)
Insulating compensated ferrimagnets, especially hosting room-temperature compensation points, are considered promising candidates for developing ultra-high-density and ultrafast magnonic devices owing to combining the characteristics of both ferromagnets and antiferromagnets. These intriguing features become outstanding close to their compensation points. However, their spin-orbit torque (SOT)-induced magnetization switching, particularly in the vicinity of the compensation points, remains unclear. Herein, we systematically investigated the SOT in insulating compensated ferrimagnetic Gd 3 Fe 5 O 12 /Pt heterostructures with perpendicular magnetic anisotropy. A nearly room-temperature compensation point ( T comp ∼ 297 K) was consistently identified by the magnetization curves, spin Hall-induced anomalous Hall effect, and spin Hall magnetoresistance measurements. Moreover, using 100 ns duration pulsed current, deterministic current-induced magnetization switching below and above T comp , even at 294 and 301 K, was achieved with opposite switching polarity. It is found that a large current is required to switch the magnetization in the vicinity of T comp , although the effective SOT field increases close to T comp . Our finding provides alternative opportunities for exploring ultrafast room-temperature magnon-based devices.