Interfacial Spin-Orbit Torques and Magnetic Anisotropy in WSe/Permalloy Bilayers
arXiv:2107.10621 · doi:10.1088/2515-7639/ac24ee
Abstract
Transition metal dichalcogenides (TMDs) are promising materials for efficient generation of current-induced spin-orbit torques on an adjacent ferromagnetic layer. Numerous effects, both interfacial and bulk, have been put forward to explain the different torques previously observed. Thus far, however, there is no clear consensus on the microscopic origin underlying the spin-orbit torques observed in these TMD/ferromagnet bilayers. To shine light on the microscopic mechanisms at play, here we perform thickness dependent spin-orbit torque measurements on the semiconducting WSe/permalloy bilayer with various WSe layer thickness, down to the monolayer limit. We observe a large out-of-plane field-like torque with spin-torque conductivities up to . For some devices, we also observe a smaller in-plane antidamping-like torque, with spin-torque conductivities up to , comparable to other TMD-based systems. Both torques show no clear dependence on the WSe thickness, as expected for a Rashba system. Unexpectedly, we observe a strong in-plane magnetic anisotropy - up to about - induced in permalloy by the underlying hexagonal WSe crystal. Using scanning transmission electron microscopy, we confirm that the easy axis of the magnetic anisotropy is aligned to the armchair direction of the WSe. Our results indicate a strong interplay between the ferromagnet and TMD, and unveil the nature of the spin-orbit torques in TMD-based devices. These findings open new avenues for possible methods for optimizing the torques and the interaction with interfaced magnets, important for future non-volatile magnetic devices for data processing and storage.
19 pages, 3 figures
References in corpus (8)
- Two Dimensional Atomic Crystals
- Optical identification of atomically thin dichalcogenide crystals
- Spin-orbit torques in heavy metal/ferromagnet bilayers with varying strength of interfacial spin-orbit coupling
- Thickness dependence of spin-orbit torques generated by WTe2
- Spin-orbit torques in NbSe/Permalloy bilayers
- Current-Induced Torques with Dresselhaus Symmetry Due to Resistance Anisotropy in 2D Materials
- Spin-orbit torque characterization in a nutshell
- Large interfacial spin-orbit torques in layered antiferromagnetic insulator NiPS/ferromagnet bilayers