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Omnidirectional Control of Large Electrical Output in a Topological Antiferromagnet

  • Tomoya Higo
  • , Yufan Li
  • , Kouta Kondou
  • , Danru Qu
  • , Muhammad Ikhlas
  • , Ryota Uesugi
  • , Daisuke Nishio-Hamane
  • , C. L. Chien
  • , Yoshi Chika Otani
  • , Satoru Nakatsuji

Research output: Contribution to journalArticlepeer-review

Abstract

Control of magnetization direction is essential for the wide application of ferromagnets; it defines the signal size of memory and sensor. However, the magnetization itself causes a dilemma. While its size matters to obtain strong responses upon its reversal, the large magnetization concomitantly suppresses the range of its directional control because of the demagnetizing field. On the other hand, realization of the desired magnetic anisotropy requires careful engineering of crystalline and interfacial effects to overcome the demagnetization barrier. Thus, it would be ideal if one could find alternative magnets that carry no magnetization but strong responses. The discovery of a topological metallic state in the antiferromagnet Mn3Sn is significant; they host a large Berry curvature in momentum space, enabling the observation of disproportionately large transverse responses such as anomalous Hall and Nernst effects, the key functionalities for replacing ferromagnets in the magnetic devices. Here, the experimental realization of omnidirectional control of the large responses in an antiferromagnet is reported. In particular, it is demonstrated that the absence of shape anisotropy enables the omnidirectional control, and lifts the shape constraint in designing the magnetic devices. This work lays the technological foundation for developing simple-structured high-performance devices including multi-level memory and heat flux sensor.

Original languageEnglish
Article number2008971
JournalAdvanced Functional Materials
Volume31
Issue number15
DOIs
Publication statusPublished - 2021 Apr 8
Externally publishedYes

Keywords

  • anomalous hall effect
  • anomalous nernst effect
  • antiferromagnetic spintronics
  • memory
  • sensors
  • topological magnet

ASJC Scopus subject areas

  • General Chemistry
  • General Materials Science
  • Condensed Matter Physics

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