4.6 Article

Ferroelectricity controlled chiral spin textures and anomalous valley Hall effect in the Janus magnet-based multiferroic heterostructure

Journal

2D MATERIALS
Volume 9, Issue 4, Pages -

Publisher

IOP Publishing Ltd
DOI: 10.1088/2053-1583/ac91df

Keywords

van der Waals heterostructure; multiferroic materials; topological magnetism; anomalous valley Hall effect

Funding

  1. 'Pioneer' and 'Leading Goose' R&D Program of Zhejiang Province [2022C01053]
  2. Key Research Program of Frontier Sciences, CAS [ZDBS-LY-7021]
  3. National Natural Science Foundation of China [11874059, 12174405]
  4. Zhejiang Provincial Natural Science Foundation [LR19A040002]
  5. Beijing National Laboratory for Condensed Matter Physics [2021000123]

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Effective manipulation and explicit identification of topological spin textures are crucial for spintronic devices. In this study, we demonstrate the differentiation of topological spin textures using voltage and anomalous valley Hall effect. This work offers an alternative approach for data encoding.
Realizing effective manipulation and explicit identification of topological spin textures are two crucial ingredients to make them as information carrier in spintronic devices with high storage density, high data handling speed and low energy consumption. Electric-field manipulation of magnetism has been achieved as a dissipationless method compared with traditional regulations. However, the magnetization is normally insensitive to the electric field since it does not break time-reversal symmetry directly, and distribution of topological magnetic quasiparticles is difficult to maintain due to the drift arising from external fluctuation, which could result in ambiguous recognition between quasiparticles and uniform magnetic background. Here, we demonstrate that electric polarization-driven skyrmionic and uniform ferromagnetic states can be easily and explicitly distinguished by transverse voltage arising from anomalous valley Hall effect in the Janus magnet-based multiferroic heterostructure LaClBr/In2Se3. Our work provides an alternative approach for data encoding, in which data are encoded by combing topological spin textures with detectable electronic transport.

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