• español
  • English
  • français
  • Deutsch
  • português (Brasil)
  • italiano
  • Contacto
  • Sugerencias
    • español
    • English
    • français
    • Deutsch
    • português (Brasil)
    • italiano
    • español
    • English
    • français
    • Deutsch
    • português (Brasil)
    • italiano
    JavaScript is disabled for your browser. Some features of this site may not work without it.
    Gredos. Repositorio documental de la Universidad de SalamancaUniversidad de Salamanca
    Consorcio BUCLE Recolector

    Listar

    Todo GredosComunidades y ColeccionesPor fecha de publicaciónAutoresMateriasTítulosEsta colecciónPor fecha de publicaciónAutoresMateriasTítulos

    Mi cuenta

    AccederRegistro

    Estadísticas

    Ver Estadísticas de uso
    Estadísticas totales de uso y lectura

    ENLACES Y ACCESOS

    Derechos de autorPolíticasGuías de autoarchivoFAQAdhesión USAL a la Declaración de BerlínProtocolo de depósito, modificación y retirada de documentos y datosSolicitud de depósito, modificación y retirada de documentos y datos

    COMPARTIR

    Ver ítem 
    •   Gredos Principal
    • Repositorio Científico
    • Departamentos
    • Ciencias Experimentales
    • Departamento Física Aplicada
    • DFA. Tesis del Departamento de Física Aplicada
    • Ver ítem
    •   Gredos Principal
    • Repositorio Científico
    • Departamentos
    • Ciencias Experimentales
    • Departamento Física Aplicada
    • DFA. Tesis del Departamento de Física Aplicada
    • Ver ítem

    Compartir

    Exportar

    RISMendeleyRefworksZotero
    • edm
    • marc
    • xoai
    • qdc
    • ore
    • ese
    • dim
    • uketd_dc
    • oai_dc
    • etdms
    • rdf
    • mods
    • mets
    • didl
    • premis

    Citas

    Título
    Advanced modelling of domain wall dynamics for spintronic devices
    Autor(es)
    Voto, Michele
    Director(es)
    López Díaz, LuisAutoridad USAL ORCID
    Torres Rincón, LuisAutoridad USAL ORCID
    Palabras clave
    Tesis y disertaciones académicas
    Universidad de Salamanca (España)
    Academic dissertations
    Tesis doctoral
    Magnetism
    Magnetismo
    Espintrónica
    Fecha de publicación
    2017-11
    Resumen
    [EN]The study of magnetism at the nanoscale has important applications in everyday life. As an example, the vast majority of all data is currently stored in magnetic hard drives, while magnetic sensors are ubiquitous in automotive applications and in the internet of things (IoT) technology. The interaction between the spins of conducting electrons and those of the localized magnetic moments of a ferromagnet is at the base of a new field of studies called Spintronics, whose technological perspectives are to overcome the existing semiconductor technology in terms of power saving, endurance and reliability. Domain wall propagation is the mechanism through which a magnetic system changes its state when its equilibrium is perturbed via an external action and its dynamics is well described using the micromagnetic formalism. Micromagnetic nu- merical simulations are a proficient tool that links experimental observations and theoretical predictions, leading the way in the theoretical understanding of magne- tization dynamics and domain wall motion. In chapter 1 we lay down the fundamental physical concepts of the micromag- netic description of magnetism and present the principal analytical tools used through- out the the rest of the work. Chapter 2 is dedicated to the description of the nu- merical solver used in this work: a custom micromagnetic code based on C++ and CUDA programming languages, developed within the group. Subsequently, we fo- cus on two different problems, making use of the descriptive and predictive power of micromagnetic simulations respectively. In chapter 3, we investigate the effect of disorder on field driven domain wall dynamics in CoFeB thin films. Such structures are the building blocks of MRAM memories and the understanding of field driven domain wall dynamics is a key step towards the optimization of device functionality. Exploiting the ability of mi- cromagnetic simulations to reproduce certain disorder features realistically, we get insight into magnetization dynamics taking place at a scale below instruments reso- lution, uncovering important connections between domain wall dynamics and ma- terial disorder features. Disorder triggers internal domain wall dynamics that gen- erates a faster energy dissipation and a faster domain wall propagation in the high- field regime. In chapter 4, we propose a new spintronic device based on the emission of spin waves by means of the controlled rotation of a domain wall in a ferromagnetic wire. The transmission of information via the periodic oscillatory perturbation of mag- netization, called spin wave, offers new perspectives in the design of low power sensors and emitters. We design a system with realistic material characteristics and investigate how the self oscillatory state of a domain wall, induced by the injection of a charge current, can emit a spin wave signal at frequency of tens of GHz that directly depends on the injected current intensity.
    URI
    https://hdl.handle.net/10366/137343
    DOI
    10.14201/gredos.137343
    Aparece en las colecciones
    • PDFAT. Física Aplicada y Tecnología [46]
    • DFA. Tesis del Departamento de Física Aplicada [49]
    • TD. Ciencias experimentales [456]
    Mostrar el registro completo del ítem
    Ficheros en el ítem
    Nombre:
    DFA_Voto_advancedmodelling.pdf
    Tamaño:
    7.632Mb
    Formato:
    Adobe PDF
    Descripción:
    Tesis
    Thumbnail
    Visualizar/Abrir
    Nombre:
    resumen_castellano_Michele_Voto.pdf
    Tamaño:
    293.4Kb
    Formato:
    Adobe PDF
    Descripción:
    Resumen
    Thumbnail
    Visualizar/Abrir
     
    Universidad de Salamanca
    AVISO LEGAL Y POLÍTICA DE PRIVACIDAD
    2024 © UNIVERSIDAD DE SALAMANCA
     
    Universidad de Salamanca
    AVISO LEGAL Y POLÍTICA DE PRIVACIDAD
    2024 © UNIVERSIDAD DE SALAMANCA