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Lorentz transmission electron microscopy studies on topological magnetic domains

  • Li Cong Peng
  • , Ying Zhang*
  • , Shu Lan Zuo
  • , Min He
  • , Jian Wang Cai
  • , Shou Guo Wang
  • , Hong Xiang Wei
  • , Jian Qi Li
  • , Tong Yun Zhao
  • , Bao Gen Shen
  • *Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

Abstract

Lorentz transmission electron microscopy (TEM) is a powerful tool to study the crystal structures and magnetic domain structures in correlation with novel physical properties. Nanometric topological magnetic configurations such as vortices, bubbles, and skyrmions have received enormous attention from the viewpoint of both fundamental science and potential applications in magnetic logic and memory devices, in which understanding the physical properties of magnetic nanodomains is essential. In this review article, several magnetic imaging methods in Lorentz TEM including the Fresnel and Foucault modes, electron holography, and differential phase contrast (DPC) techniques are discussed, where the novel properties of topological magnetic domains are well addressed. In addition, in situ Lorentz TEM demonstrates that the topological domains can be efficiently manipulated by electric currents, magnetic fields, and temperatures, exhibiting novel phenomena under external fields, which advances the development of topological nanodomain-based spintronics.

Original languageEnglish
Article number066802
JournalChinese Physics B
Volume27
Issue number6
DOIs
StatePublished - Jun 2018
Externally publishedYes

Keywords

  • In situ Lorentz TEM
  • magnetic bubbles
  • magnetic skyrmions
  • magnetic vortices

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