4.8 Article

Current-driven dynamics and ratchet effect of skyrmion bubbles in a ferrimagnetic insulator

Journal

NATURE NANOTECHNOLOGY
Volume 17, Issue 8, Pages 834-+

Publisher

NATURE PORTFOLIO
DOI: 10.1038/s41565-022-01144-x

Keywords

-

Funding

  1. Swiss National Science Foundation [200020-200465, 200021-188414, 200021-178825, PZ00P2-179944, 200020-175600]
  2. European Research Council [694955-INSEETO]
  3. ETH Zurich (Career Seed Grant) [SEED-20 19-2]
  4. Spanish Ministry of Economy and Competitiveness (FPI fellowship) [RTI2018-095303-B-C53]
  5. Ministry of Science, Innovation and Universities through the Maria de Maeztu Program for Units of Excellence in RD [CEX2018-000805-M]
  6. Comunidad de Madrid [2020-T1/IND-20041]
  7. Swiss National Science Foundation (SNF) [PZ00P2_179944] Funding Source: Swiss National Science Foundation (SNF)

Ask authors/readers for more resources

Magnetic skyrmions are promising topological spin structures for high-density memory devices and novel computing schemes. The control of skyrmion bubbles' motion and the modification of their velocity and depinning threshold can be achieved by interfacial stabilization and current-driven control, as well as exchange coupling with other layers.
Magnetic skyrmions are topological spin textures that hold potential for the development of post-von Neumann computing schemes. In coupled ferrimagnetic insulators, pinning effects and intentional distortions can lead to a ratchet-like current-driven motion of skyrmion bubbles. Magnetic skyrmions are compact chiral spin textures that exhibit a rich variety of topological phenomena and hold potential for the development of high-density memory devices and novel computing schemes driven by spin currents. Here, we demonstrate the room-temperature interfacial stabilization and current-driven control of skyrmion bubbles in the ferrimagnetic insulator Tm3Fe5O12 coupled to Pt, showing the current-induced motion of individual skyrmion bubbles. The ferrimagnetic order of the crystal together with the interplay of spin-orbit torques and pinning determine the skyrmion dynamics in Tm3Fe5O12 and result in a strong skyrmion Hall effect characterized by a negative deflection angle and hopping motion. Further, we show that the velocity and depinning threshold of the skyrmion bubbles can be modified by exchange coupling Tm3Fe5O12 to an in-plane magnetized Y3Fe5O12 layer, which distorts the spin texture of the skyrmions and leads to directional-dependent rectification of their dynamics. This effect, which is equivalent to a magnetic ratchet, is exploited to control the skyrmion flow in a racetrack-like device.

Authors

I am an author on this paper
Click your name to claim this paper and add it to your profile.

Reviews

Primary Rating

4.8
Not enough ratings

Secondary Ratings

Novelty
-
Significance
-
Scientific rigor
-
Rate this paper

Recommended

No Data Available
No Data Available