Real-Space Observation of Nonvolatile Zero-Field Biskyrmion Lattice Generation in MnNiGa Magnet

Magnetic skyrmions, particular those without the support of external magnetic fields over a wide temperature region, are promising as alternative spintronic units to overcome the fundamental size limitation of conventional magnetic bits. In this study, we use in situ Lorentz microscope to directly d...

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Veröffentlicht in:Nano letters 2017-11, Vol.17 (11), p.7075-7079
Hauptverfasser: Peng, Licong, Zhang, Ying, Wang, Wenhong, He, Min, Li, Lailai, Ding, Bei, Li, Jianqi, Sun, Young, Zhang, X.-G, Cai, Jianwang, Wang, Shouguo, Wu, Guangheng, Shen, Baogen
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Sprache:eng
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Zusammenfassung:Magnetic skyrmions, particular those without the support of external magnetic fields over a wide temperature region, are promising as alternative spintronic units to overcome the fundamental size limitation of conventional magnetic bits. In this study, we use in situ Lorentz microscope to directly demonstrate the generation and sustainability of robust biskyrmion lattice at zero magnetic field over a wide temperature range of 16–338 K in MnNiGa alloy. This procedure includes a simple field-cooling manipulation from 360 K (higher than Curie temperature T C ∼ 350 K), where topological transition easily occurs by adapting the short-range magnetic clusters under a certain magnetic field. The biskyrmion phase is favored upon cooling below T C. Once they are generated, the robust high-density biskyrmions persist even after removing the external magnetic field due to the topological protection and the increased energy barrier.
ISSN:1530-6984
1530-6992
DOI:10.1021/acs.nanolett.7b03792