OAM Driven Nucleation of Sub‐50 nm Compact Antiferromagnetic Skyrmions

Author:

Mallick Sougata12,Ye Peng345,Boutu Willem34,Gauthier David34,Merdji Hamed6,Bibes Manuel1,Viret Michel7,Bouzehouane Karim1,Cros Vincent1ORCID

Affiliation:

1. Laboratoire Albert Fert, CNRS, Thales Université Paris‐Saclay Palaiseau 91767 France

2. Department of Physics and Nanotechnology SRM Institute of Science and Technology Kattankulathur Tamilnadu 603203 India

3. Université Paris‐Saclay, CEA, LIDYL Gif sur Yvette 91191 France

4. CY Cergy Paris Université, CEA, LIDYL Gif sur Yvette 91191 France

5. Beijing National Laboratory for Condensed Matter Physics Institute of Physics, Chinese Academy of Sciences Beijing 10090 China

6. LOA, CNRS, Ecole Polytechnique, ENSTA Paris Institut Polytechnique de Paris Palaiseau 91120 France

7. SPEC, CEA, CNRS Université Paris‐Saclay Gif sur Yvette 91191 France

Abstract

AbstractOwing to their high mobility and immunity to topological deflection, skyrmions in antiferromagnetic (AFM) systems are gaining attention as a potential solution for next‐generation magnetic data storage. Synthetic antiferromagnets (SAFs) offer a promising avenue to tune the properties of the individual magnetic layers, facilitating the conditions necessary for skyrmions to be used in practical devices. Despite recent advancements achieving fast skyrmion mobility, the nucleation of small and rigid circular skyrmions without an external field remains challenging in SAFs. Theoretical predictions suggest that optical vortex (OAM) beams can stabilize skyrmionic spin textures by transferring their spin and orbital angular momentum to the magnetic material. Here, this intriguing proposal is delved into and the creation of sub‐50 nm compact skyrmions in SAFs using OAM beams is successfully demonstrated, eliminating the need for external magnetic fields. Additionally, the results underscore the importance of beam energy and the number of pulses, as both factors play critical roles in the stabilization of these AFM skyrmionic textures. This breakthrough is significant as it paves the way for stabilizing true zero‐field skyrmions in AFM systems, where magnetization is minimally affected by external magnetic fields. This work will open a potential avenue for stabilizing small, compact skyrmions in antiferroic systems, facilitating their implementation in logic and memory devices.

Funder

Indo-French Centre for the Promotion of Advanced Research

Agence Nationale de la Recherche

Horizon 2020 Framework Programme

Publisher

Wiley

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