Magnetization dynamics driven by displacement currents across a magnetic tunnel junction

Author:

Safeer C.K.1ORCID,Keatley Paul S.2,Skowroński Witold3,Mojsiejuk Jakub3ORCID,Yakushiji Kay4ORCID,Fukushima Akio4ORCID,Yuasa Shinji4ORCID,Bedau Daniel5ORCID,Casanova Fèlix67ORCID,Hueso Luis E.67ORCID,Hicken Robert J.2,Pinna Daniele1ORCID,van der Laan Gerrit8ORCID,Hesjedal Thorsten1ORCID

Affiliation:

1. University of Oxford

2. University of Exeter

3. Institute of Electronics, AGH University of Kraków

4. National Institute of Advanced Industrial Science and Technology

5. Western Digital

6. CIC nanoGUNE BRTA

7. IKERBASQUE

8. Diamond Light Source

Abstract

Understanding the high-frequency transport characteristics of magnetic tunnel junctions (MTJs) is crucial for the development of fast-operating spintronics memories and radio frequency devices. Here, we present the study of a frequency-dependent capacitive current effect in CoFeB/MgO-based MTJs and its influence on magnetization dynamics using a time-resolved magneto-optical Kerr effect technique. In our device, operating at gigahertz frequencies, we find a large displacement current of the order of mA, which does not break the tunnel barrier of the MTJ. Importantly, this current generates an Oersted field and spin-orbit torque, inducing magnetization dynamics. Our discovery holds promise for building robust MTJ devices operating under high current conditions, also highlighting the significance of capacitive impedance in high-frequency magnetotransport techniques. Published by the American Physical Society 2024

Funder

S.C.

L.E.H.

de

National Institute of Advanced Industrial Science and Technology

UKRI-EPSRC

W.S.

AGH University of Kraków

ERDF/EU

Units of Excellence Programme

Publisher

American Physical Society (APS)

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