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. 2022 Jul 19;119(29):e2122237119.
doi: 10.1073/pnas.2122237119. Epub 2022 Jul 11.

A micromagnetic theory of skyrmion lifetime in ultrathin ferromagnetic films

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A micromagnetic theory of skyrmion lifetime in ultrathin ferromagnetic films

Anne Bernand-Mantel et al. Proc Natl Acad Sci U S A. .

Abstract

We use the continuum micromagnetic framework to derive the formulas for compact skyrmion lifetime due to thermal noise in ultrathin ferromagnetic films with relatively weak interfacial Dzyaloshinskii-Moriya interaction. In the absence of a saddle point connecting the skyrmion solution to the ferromagnetic state, we interpret the skyrmion collapse event as "capture by an absorber" at microscale. This yields an explicit Arrhenius collapse rate with both the barrier height and the prefactor as functions of all the material parameters, as well as the dynamical paths to collapse.

Keywords: magnetic skyrmions; rare events; stochastic dynamics; topological protection.

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Conflict of interest statement

The authors declare no competing interest.

Figures

Fig. 1.
Fig. 1.
(A) Skyrmion equilibrium radius lexρ0 in nanometers, with lex=8.4 nm and ρ0 from Eq. 8. (B and C) Skyrmion lifetime τ0/Jδ for τ0=7.8×1012 s, α=0.3,δ=0.0475, with Jδ from Eq. 23 for ε=0.0046 (T = 4 K) in B and Jδ from Eq. 26 for ε=0.337 (T = 293 K) in C. In A and B, only the region κ/Q1<12 is shown. (B, Inset) The optimal collapse path z¯opt(t) from Eq. 28.

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