Spin Torque Ferromagnetic Resonance Measurements in a Bulk Rashba System

Author:

Ahn Jeong Ung12,Jeon Jeehoon3,Cho Seong Won45,Lee Suyoun46,Lee OukJae2,Koo Hyun Cheol12ORCID

Affiliation:

1. KU-KIST Graduate School of Converging Science and Technology Korea University Seoul 02841 Republic of Korea

2. Center for Spintronics Korea Institute of Science and Technology Seoul 02792 Republic of Korea

3. Package Manufacturing Technology Group Samsung Electro-Mechanics Busan 46754 Republic of Korea

4. Center for Neuromorphic Engineering Korea Institute of Science and Technology Seoul 02792 Republic of Korea

5. Department of Materials Science and Engineering Seoul National University Seoul 08826 Republic of Korea

6. Division of Nano & Information Technology Korea University of Science and Technology Daejeon 34316 Republic of Korea

Abstract

While many researchers have focused on the interfacial Rashba effect, bulk Rashba materials have received considerable interest due to their potential to enhance spin–orbit torque (SOT). By utilizing GeTe as a bulk Rashba material in the role of a spin–orbit channel, GeTe/Ni81Fe19 and GeTe/Co40Fe40B20 bilayers are fabricated, and SOTs are investigated using the spin torque ferromagnetic (FM) resonance technique. In this method, damping‐like and field‐like SOTs are extracted individually, excluding thermal effects. Upon analyzing the data, a remarkable field‐like SOT efficiency of 0.40 is obtained from the GeTe/Ni81Fe19 system. This high efficiency is attributed to the enhancement of interfacial spin–orbit coupling through the bulk Rashba effect of the GeTe channel. Moreover, noticeable distinctions in SOTs are observed between the Co40Fe40B20 and Ni81Fe19 interfaces, underscoring the importance of selecting the appropriate FM layer for optimizing SOT efficiency. This study highlights the promising potential of bulk Rashba materials like GeTe in advancing SOT‐based devices.

Funder

Korea Institute of Science and Technology

National Research Foundation of Korea

Publisher

Wiley

Subject

Condensed Matter Physics,Electronic, Optical and Magnetic Materials

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