Unconventional Spin-orbit Torques by Two-dimensional Multilayered MXenes for Future Nonvolatile Magnetic Memories
Prabhat Kumar, Yoshio Miura, Yoshinori Kotani, Akiho Sumiyoshiya, Tetsuya Nakamura, Gaurav K. Shukla, and Shinji Isogami

TL;DR
This paper demonstrates a novel 2D MXene-based spin-orbit torque device capable of field-free magnetization switching, driven by an unconventional out-of-plane SOT linked to the orbital Hall effect and interfacial magnetic moments.
Contribution
It introduces a new MXene-based bilayer structure for spin-orbit torque applications, revealing unconventional out-of-plane SOT mechanisms and demonstrating field-free magnetization switching.
Findings
Field-free current-induced magnetization switching achieved.
Unconventional out-of-plane SOT linked to orbital Hall effect.
Interfacial magnetic moments contribute to SOT mechanisms.
Abstract
MXenes have attracted considerable attention in recent years owing to their two-dimensional (2D) layered structures with various functionalities similar to those of graphene and transition metal dichalcogenides. To open a new application field for MXenes in the realm of electronic devices, such as ultrahigh-integrated magnetic memory, we have developed a spin-orbit torque (SOT) bilayer structure comprising bare MXene of Cr2N: substrate//Cr2N/[Co/Pt]3/MgO using the magnetron sputtering technique. We demonstrated field-free current-induced magnetization switching (CIMS) in the bilayer structure, regardless of the charge current directions with respect to the mirror symmetry lines of Cr2N crystal. This is a specific characteristic for the 2D MXene-based SOT-devices, originating from an unconventional out-of-plane SOT. As the SOT efficiency increases with increasing the Cr2N thickness, the…
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Taxonomy
TopicsMXene and MAX Phase Materials · Graphene research and applications · Advanced Memory and Neural Computing
