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Magnetic Skyrmions in a Thickness Tunable 2D Ferromagnet from a Defect Driven Dzyaloshinskii-Moriya Interaction

  • Anirban Chakraborty
  • , Abhay K. Srivastava
  • , A. Sharma
  • , Ajesh Gopi
  • , K. Mohseni
  • , Arthur Ernst
  • , Hakan Deniz
  • , Binoy Krishna Hazra
  • , S. Das
  • , Paolo Sessi
  • , Ilya Kostanovskiy
  • , Tianping Ma
  • , H. L. Meyerheim
  • , S. S. P. Parkin

Research output: Contribution to journalArticlepeer-review

Abstract

There is considerable interest in van der Waals (vdW) materials as potential hosts for chiral skyrmionic spin textures. Of particular interest is the ferromagnetic, metallic compound Fe3GeTe2 (FGT), which has a comparatively high Curie temperature (150-220 K). Several recent studies have reported the observation of chiral Neel skyrmions in this compound, which is inconsistent with its presumed centrosymmetric structure. Here the observation of Neel type skyrmions in single crystals of FGT via Lorentz transmission electron microscopy (LTEM) is reported. It is shown from detailed X-ray diffraction structure analysis that FGT lacks an inversion symmetry as a result of an asymmetric distribution of Fe vacancies. This vacancy-induced breaking of the inversion symmetry of this compound is a surprising and novel observation and is a prerequisite for a Dzyaloshinskii-Moriya vector exchange interaction which accounts for the chiral Neel skyrmion phase. This phenomenon is likely to be common to many 2D vdW materials and suggests a path to the preparation of many such acentric compounds. Furthermore, it is found that the skyrmion size in FGT is strongly dependent on its thickness: the skyrmion size increases from approximate to 100 to approximate to 750 nm as the thickness of the lamella is increased from approximate to 90 nm to approximate to 2 mu m. This extreme size tunability is a feature common to many low symmetry ferro- and ferri-magnetic compounds.
Original languageEnglish
Article number2108637
Pages (from-to)2108637
Number of pages7
JournalAdvanced Materials
Volume34
Issue number11
DOIs
Publication statusPublished - 17 Mar 2022

Fields of science

  • 103 Physics, Astronomy

JKU Focus areas

  • Digital Transformation

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