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    Título
    Absence of Walker Breakdown in the Dynamics of Chiral Néel Domain Walls Driven by In-Plane Strain Gradients
    Autor(es)
    Fattouhi, Mouad
    García Sánchez, FelipeUSAL authority ORCID
    Yanes Díaz, RocíoUSAL authority ORCID
    Raposo Funcia, Víctor JavierUSAL authority ORCID
    Martínez Vecino, EduardoUSAL authority ORCID
    López Díaz, LuisUSAL authority ORCID
    Palabras clave
    Magnetism
    Computational physics
    Clasificación UNESCO
    2202.08 Magnetismo
    Fecha de publicación
    2022
    Resumen
    [EN]The influence of mechanical strain on the static and dynamic properties of chiral domain walls (DWs) in perpendicularly magnetized strips is investigated using micromagnetic simulations and a one-dimensional model. While a uniform strain allows one to reversibly switch the domain-wall configuration at rest between Bloch and Néel patterns, strain gradients are suggested as an energy-sustainable means to drive domain-wall motion without the need for magnetic fields or electrical currents. It is shown that an in-plane strain gradient creates a force on a domain wall that drives it towards a region of higher tensile (compres- sive) strain for materials with positive (negative) magnetostriction. Moreover, due to the dependence of the domain-wall internal energy on the in-plane strain, a damping torque proportional to the local strain arises during motion that opposes the precessional torque due to the driving force, which is proportional to the strain gradient. After a transient period, where both the internal DW angle and the velocity change non- monotonically, reaching their maximum values asynchronously, the two torques balance each other. This compensation prevents the onset of turbulent domain-wall dynamics, and steady domain-wall motion with a constant velocity is asymptotically reached for an arbitrarily large strain gradient. Despite this complex dynamics, our work shows that average domain-wall velocities in the range of 500 m/s can be obtained using voltage-induced strain in piezoelectric/ferromagnetic devices under realistic conditions.
    Descripción
    We gratefully acknowledge financial support from the European Union H2020 Program under MSCA MagnEFi ITN Grant No. 860060, from the Ministerio de Education y Ciencia through the project MAT2017-87072-C4-1-P, from the Ministerio de Ciencia e Innovacion under the project PID2020-117024GB-C41, and from the Conseje- ria de Educación of Castilla y León under the projects SA114P20 and SA299P18.
    URI
    https://hdl.handle.net/10366/153134
    ISSN
    0003-6951
    DOI
    10.1103/PhysRevApplied.18.044023
    Versión del editor
    https://doi.org/10.1103/PhysRevApplied.18.044023
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    • SINAMAG. Artículos [56]
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