Skip to main navigation Skip to search Skip to main content

Skyrmion lattice creep at ultra-low current densities

  • Yongkang Luo
  • , Shi Zeng Lin
  • , Maxime Leroux
  • , Nicholas Wakeham
  • , David M. Fobes
  • , Eric D. Bauer
  • , Jonathan B. Betts
  • , Joe D. Thompson
  • , Albert Migliori
  • , Marc Janoschek
  • , Boris Maiorov

Research output: Contribution to journalArticlepeer-review

23 Scopus citations

Abstract

Magnetic skyrmions are well-suited for encoding information because they are nano-sized, topologically stable, and only require ultra-low critical current densities jc to depin from the underlying atomic lattice. Above jc skyrmions exhibit well-controlled motion, making them prime candidates for race-track memories. In thin films thermally-activated creep motion of isolated skyrmions was observed below jc as predicted by theory. Uncontrolled skyrmion motion is detrimental for race-track memories and is not fully understood. Notably, the creep of skyrmion lattices in bulk materials remains to be explored. Here we show using resonant ultrasound spectroscopy—a probe highly sensitive to the coupling between skyrmion and atomic lattices—that in the prototypical skyrmion lattice material MnSi depinning occurs at jc* that is only 4 percent of jc. Our experiments are in excellent agreement with Anderson-Kim theory for creep and allow us to reveal a new dynamic regime at ultra-low current densities characterized by thermally-activated skyrmion-lattice-creep with important consequences for applications.

Original languageEnglish
Article number83
JournalCommunications Materials
Volume1
Issue number1
DOIs
StatePublished - Dec 2020

Fingerprint

Dive into the research topics of 'Skyrmion lattice creep at ultra-low current densities'. Together they form a unique fingerprint.

Cite this