Literature DB >> 32459968

Tuning the Properties of Zero-Field Room Temperature Ferromagnetic Skyrmions by Interlayer Exchange Coupling.

Roberto Lo Conte1,2, Ashis K Nandy3, Gong Chen4, Andre L Fernandes Cauduro5, Ajanta Maity3, Colin Ophus5, Zhijie Chen6, Alpha T N'Diaye7, Kai Liu4,6, Andreas K Schmid5, Roland Wiesendanger2.   

Abstract

Magnetic materials offer an opportunity to overcome the scalability and energy consumption limits affecting the semiconductor industry. New computational device architectures, such as low-power solid state magnetic logic and memory-in-logic devices, have been proposed which rely on the unique properties of magnetic materials. Magnetic skyrmions, topologically protected quasi-particles, are at the core of many of the newly proposed spintronic devices. Many different materials systems have been shown hosting ferromagnetic skyrmions at room temperature. However, a magnetic field is a key ingredient to stabilize skyrmions, and this is not desirable for applications, due to the poor scalability of active components generating magnetic fields. Here we report the observation of ferromagnetic skyrmions at room temperature and zero magnetic field, stabilized through interlayer exchange coupling (IEC) between a reference magnet and a free magnet. Most importantly, by tuning the strength of the IEC, we are able to tune the skyrmion size and areal density. Our findings are relevant to the development of skyrmion-based spintronic devices suitable for general-use applications which go beyond modern nanoelectronics.

Keywords:  ferromagnetic skyrmions; interlayer exchange coupling; nanomagnetism; non-collinear magnetism; spintronics

Year:  2020        PMID: 32459968     DOI: 10.1021/acs.nanolett.0c00137

Source DB:  PubMed          Journal:  Nano Lett        ISSN: 1530-6984            Impact factor:   11.189


  1 in total

1.  Rotating edge-field driven processing of chiral spin textures in racetrack devices.

Authors:  Alexander F Schäffer; Pia Siegl; Martin Stier; Thore Posske; Jamal Berakdar; Michael Thorwart; Roland Wiesendanger; Elena Y Vedmedenko
Journal:  Sci Rep       Date:  2020-11-23       Impact factor: 4.379

  1 in total

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