Formation of skyrmions in thin CoPt films with an atomic force microscope probe

封面

如何引用文章

全文:

开放存取 开放存取
受限制的访问 ##reader.subscriptionAccessGranted##
受限制的访问 订阅存取

详细

Methods of magnetic force microscopy have been developed that make it possible to visualize the evolution of the domain structure when scanning a sample with a magnetic probe. These methods were used to study the processes of formation of skyrmions in thin CoPt films, a characteristic feature of which is the presence of the Dzyaloshinskii–Moriya interaction. A change in the position, shape, and size of skyrmions under the action of a spatially inhomogeneous magnetic field of the probe has been experimentally demonstrated.

作者简介

A. Temiryazev

Fryazino Branch of the Kotelnikov Institute of Radioengineering and Electronics
of the Russian Academy of Sciences

编辑信件的主要联系方式.
Email: temiryazev@gmail.com
Russia, 141190, Fryazino

A. Zdoroveishchev

Scientific Research Institute of Physics and Technology, Nizhny Novgorod State University

Email: temiryazev@gmail.com
Russia, 603950, Nizhny Novgorod

M. Temiryazeva

Fryazino Branch of the Kotelnikov Institute of Radioengineering and Electronics
of the Russian Academy of Sciences

Email: temiryazev@gmail.com
Russia, 141190, Fryazino

参考

  1. Chang J., Mironov V.L., Gribkov B.A. et al. // J. Appl. Phys. 2006. V. 100. Art. No. 104304.
  2. Mironov V.L., Gribkov B.A., Vdovichev S.N. et al. // J. Appl. Phys. 2009. V. 106. Art. No. 053911.
  3. Dzyaloshinskii I. // J. Phys. Chem. Solids. 1958. V. 4. P. 241.
  4. Moriya T. // Phys. Rev. 1960. V. 120. P. 91.
  5. Wiesendanger R. // Nature. Rev. Mater. 2016. V. 1. Art. No. 16044.
  6. Fert A., Reyren N., Cros V. // Nature Rev. Mater. 2017. V. 2. Art. No. 17031.
  7. Здоровейщев А.В., Дорохин М.В., Вихрова О.В. и др. // ФТТ. 2016. Т. 58. № 11. С. 2186; Zdoroveyshchev A.V., Dorokhin M.V., Vikhrova O.V. et al. // Phys. Solid State. 2016. V. 58. No. 11. P. 2267.
  8. Zhang S., Zhang J., Zhang Q. et al. // Appl. Phys. Lett. 2018. V. 112. Art. No. 132405.
  9. Темирязев А.Г., Темирязева М.П., Здоровейщев А.В. и др. // ФТТ. 2018. Т. 60. № 11. С. 2158; Temiryazev A.G., Temiryazeva M.P., Zdoroveyshchev A.V. // Phys. Solid State. 2018. V. 60. No. 11. P. 2200.
  10. Casiraghi A., Corte-León H., Vafaee M. et al. // Commun. Phys. 2019. V. 2. P. 145.
  11. Калентьева И.Л., Вихрова О.В., Данилов Ю.А. и др. // ФТТ. 2019. Т. 61. № 9. С. 1694; Kalentyeva I.L., Vikhrova O.V., Danilov Y.A. et al. // Phys. Solid State. 2019. V. 61. No. 9. P. 1646.
  12. Калентьева И.Л., Вихрова О.В., Данилов Ю.А. и др. // ФТТ. 2021. Т. 63. № 3. С. 324; Kalentyeva I.L., Vikhrova O.V., Danilov Y.A. et al. // Phys. Solid State. 2021. V. 63. No. 3. P. 384.
  13. Zdoroveyshchev A.V., Vikhrova O.V., Demina P.B. et al. // Int. J. Nanosci. 2019. V. 18. Art. No. 1940019.
  14. Abe M., Sugimoto Y., Custance O., Morita S. // Appl. Phys. Lett. 2005. V. 87. Art. No. 173503.

补充文件

附件文件
动作
1. JATS XML
2.

下载 (2MB)
3.

下载 (1MB)

版权所有 © А.Г. Темирязев, А.В. Здоровейщев, М.П. Темирязева, 2023

##common.cookie##