| Literature DB >> 29299928 |
Zhipeng Hou1,2, Qiang Zhang2, Guizhou Xu3, Chen Gong2, Bei Ding1, Yue Wang1, Hang Li1, Enke Liu1, Feng Xu3, Hongwei Zhang1, Yuan Yao1, Guangheng Wu1, Xi-Xiang Zhang2, Wenhong Wang1.
Abstract
Nanoscale topologically nontrivial spin textures, such as magnetic skyrmions, have been identified as promising candidates for the transport and storage of information for spintronic applications, notably magnetic racetrack memory devices. The design and realization of a single skyrmion chain at room temperature (RT) and above in the low-dimensional nanostructures are of great importance for future practical applications. Here, we report the creation of a single skyrmion bubble chain in a geometrically confined Fe3Sn2 nanostripe with a width comparable to the featured size of a skyrmion bubble. Systematic investigations on the thermal stability have revealed that the single chain of skyrmion bubbles can keep stable at temperatures varying from RT up to a record-high temperature of 630 K. This extreme stability can be ascribed to the weak temperature-dependent magnetic anisotropy and the formation of edge states at the boundaries of the nanostripes. The realization of the highly stable skyrmion bubble chain in a geometrically confined nanostructure is a very important step toward the application of skyrmion-based spintronic devices.Keywords: Lorentz transmission electron microscopy; Skyrmion bubble; frustrated magnet; temperature stability
Year: 2018 PMID: 29299928 DOI: 10.1021/acs.nanolett.7b04900
Source DB: PubMed Journal: Nano Lett ISSN: 1530-6984 Impact factor: 11.189