• español
  • English
  • français
  • Deutsch
  • português (Brasil)
  • italiano
  • Contact Us
  • Send Feedback
    • 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

    Browse

    All of GredosCommunities and CollectionsBy Issue DateAuthorsSubjectsTitlesThis CollectionBy Issue DateAuthorsSubjectsTitles

    My Account

    LoginRegister

    Statistics

    View Usage Statistics
    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

    View Item 
    •   Gredos Home
    • Scientific Repository
    • Grupos de Investigación
    • ALF. Aplicaciones del Láser y Fotónica
    • ALF. Artículos
    • View Item
    •   Gredos Home
    • Scientific Repository
    • Grupos de Investigación
    • ALF. Aplicaciones del Láser y Fotónica
    • ALF. Artículos
    • View Item

    Compartir

    Exportar

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

    Citas

    Título
    Q-switched vortex waveguide laser generation based on LNOI thin films with implanted Ag nanoparticles.
    Autor(es)
    Sun, Wenqing
    Liu, Yi
    Romero Vázquez, CarolinaUSAL authority ORCID
    Vázquez de Aldana, Javier R.USAL authority ORCID
    Ren, Feng
    Jia, Yuechen
    Sun, Xiaoli
    Chen, Feng
    Palabras clave
    Integrated photonics
    Laser sources
    Q switched lasers
    Thin film applications
    Thin films
    Ultrafast lasers
    Fecha de publicación
    2023-10
    Editor
    Optica Publishing Group
    Citación
    Wenqing Sun, Yi Liu, Carolina Romero, Javier R. Vázquez de Aldana, Feng Ren, Yuechen Jia, Xiaoli Sun, and Feng Chen, "Q-switched vortex waveguide laser generation based on LNOI thin films with implanted Ag nanoparticles," Opt. Express 31, 36725-36735 (2023)
    Resumen
    [EN]Lithium-niobate-on-insulator (LNOI) thin films have gained significant attention in integrated photonics due to their exceptional crystal properties and wide range of applications. In this paper, we propose a novel approach to realize a Q-switched vortex waveguide laser by incorporating integrated lithium niobate thin films with embedded silver nanoparticles (Ag:LNOI) as a saturable absorber. The saturable absorption characteristics of Ag:LNOI are investigated using a home-made Z-scan system. Additionally, we integrate Ag:LNOI as a saturable absorber into a Nd:YAG “ear-like” cladding waveguide platform, which is prepared via femtosecond laser direct writing. By combining this setup with helical phase plates for phase modulation in the resonator, we successfully achieve a passive Q-switched vortex laser with a high repetition rate and narrow pulse duration in the near-infrared region. This work demonstrates the potential applications of LNOI thin films towards on-chip integration of vortex waveguide laser sources.
    URI
    https://hdl.handle.net/10366/156221
    Versión del editor
    https://doi.org/10.1364/OE.503501
    Collections
    • ALF. Artículos [337]
    Show full item record
    Files in this item
    Nombre:
    Sun et al. - 2023 - +Q-switched vortex waveguide laser generation base.pdf
    Tamaño:
    9.838Mb
    Formato:
    Adobe PDF
    Descripción:
    Artículo principal
    Thumbnail
    FilesOpen
     
    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