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dc.contributor.authorFattouhi, Mouad
dc.contributor.authorGarcía Sánchez, Felipe 
dc.contributor.authorYanes Díaz, Rocío 
dc.contributor.authorRaposo Funcia, Víctor Javier 
dc.contributor.authorMartínez Vecino, Eduardo 
dc.contributor.authorLópez Díaz, Luis 
dc.date.accessioned2023-10-03T11:41:49Z
dc.date.available2023-10-03T11:41:49Z
dc.date.issued2022
dc.identifier.issn0003-6951
dc.identifier.urihttp://hdl.handle.net/10366/153134
dc.descriptionWe 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.es_ES
dc.description.abstract[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.es_ES
dc.format.mimetypeapplication/pdf
dc.language.isoenges_ES
dc.subjectMagnetismes_ES
dc.subjectComputational physicses_ES
dc.titleAbsence of Walker Breakdown in the Dynamics of Chiral Néel Domain Walls Driven by In-Plane Strain Gradientses_ES
dc.typeinfo:eu-repo/semantics/articlees_ES
dc.relation.publishversionhttps://doi.org/10.1103/PhysRevApplied.18.044023es_ES
dc.subject.unesco2202.08 Magnetismoes_ES
dc.identifier.doi10.1103/PhysRevApplied.18.044023
dc.relation.projectIDMagnEFi ITN Grant No. 860060es_ES
dc.relation.projectIDMAT2017-87072-C4-1-Pes_ES
dc.relation.projectIDPID2020-117024GB-C41es_ES
dc.relation.projectIDSA114P20es_ES
dc.relation.projectIDSA299P18es_ES
dc.rights.accessRightsinfo:eu-repo/semantics/openAccesses_ES
dc.identifier.essn1077-3118
dc.identifier.essn2331-7019
dc.type.hasVersioninfo:eu-repo/semantics/publishedVersiones_ES


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