• Login
    View Item 
    •   Home
    • UA Faculty Research
    • UA Faculty Publications
    • View Item
    •   Home
    • UA Faculty Research
    • UA Faculty Publications
    • View Item
    JavaScript is disabled for your browser. Some features of this site may not work without it.

    Browse

    All of UA Campus RepositoryCommunitiesTitleAuthorsIssue DateSubmit DateSubjectsPublisherJournalThis CollectionTitleAuthorsIssue DateSubmit DateSubjectsPublisherJournal

    My Account

    LoginRegister

    About

    AboutUA Faculty PublicationsUA DissertationsUA Master's ThesesUA Honors ThesesUA PressUA YearbooksUA CatalogsUA Libraries

    Statistics

    Most Popular ItemsStatistics by CountryMost Popular Authors

    Trade‐Off between Second‐ and Third‐Order Nonlinearities, Ultrafast Free Carrier Absorption and Material Damage in Silicon Nanoparticles

    • CSV
    • RefMan
    • EndNote
    • BibTex
    • RefWorks
    Thumbnail
    Name:
    AOM_SiliconNP.pdf
    Size:
    1.127Mb
    Format:
    PDF
    Description:
    Final Accepted Manuscript
    Download
    Author
    Rudenko, Anton
    Han, Aoxue
    Moloney, Jerome V.
    Affiliation
    Arizona Center for Mathematical Sciences, University of Arizona
    Wyant College of Optical Sciences, University of Arizona
    Issue Date
    2022-11-15
    Keywords
    free carrier absorption
    harmonic generation
    lattice resonances
    material damage
    Mie resonances
    silicon photonics
    ultrashort lasers
    
    Metadata
    Show full item record
    Publisher
    Wiley
    Citation
    Rudenko, A., Han, A., & Moloney, J. V. (2022). Trade-Off between Second- and Third-Order Nonlinearities, Ultrafast Free Carrier Absorption and Material Damage in Silicon Nanoparticles. Advanced Optical Materials.
    Journal
    Advanced Optical Materials
    Rights
    © 2022 Wiley-VCH GmbH.
    Collection Information
    This item from the UA Faculty Publications collection is made available by the University of Arizona with support from the University of Arizona Libraries. If you have questions, please contact us at repository@u.library.arizona.edu.
    Abstract
    Reaching the optimal second- and third-order nonlinear conversion efficiencies while avoiding undesirable free carrier absorption losses and material damage in ultrashort laser-excited nanostructures is a challenging obstacle in all-dielectric ultrafast nanophotonics. In order to elucidate the main aspects of this problem, a multi-physical model is developed, coupling nonlinear Maxwell equations supplied by surface and bulk nonlinearities with free carrier hydrodynamic equations for electron–hole plasma kinetics and electron-ion transfer for silicon. The maximum feasible efficiencies for a single spherical particle supporting different electric and magnetic resonances are compared, and the harmonic yields are further optimized by tuning lattice resonances in a periodic arrangement of nanoparticles. Results support the dominant role of magnetic dipole and quadrupole contributions in the enhancement of the third harmonic and the electric dipole for the second harmonic, as well as the possibility to further improve the conversion of both harmonics simultaneously at least by two orders of magnitude by designing properly the resonant metasurface.
    Note
    12 month embargo; first published: 15 November 2022
    ISSN
    2195-1071
    EISSN
    2195-1071
    DOI
    10.1002/adom.202201654
    Version
    Final accepted manuscript
    Sponsors
    Air Force Office of Scientific Research
    ae974a485f413a2113503eed53cd6c53
    10.1002/adom.202201654
    Scopus Count
    Collections
    UA Faculty Publications

    entitlement

     
    The University of Arizona Libraries | 1510 E. University Blvd. | Tucson, AZ 85721-0055
    Tel 520-621-6442 | repository@u.library.arizona.edu
    DSpace software copyright © 2002-2017  DuraSpace
    Quick Guide | Contact Us | Send Feedback
    Open Repository is a service operated by 
    Atmire NV
     

    Export search results

    The export option will allow you to export the current search results of the entered query to a file. Different formats are available for download. To export the items, click on the button corresponding with the preferred download format.

    By default, clicking on the export buttons will result in a download of the allowed maximum amount of items.

    To select a subset of the search results, click "Selective Export" button and make a selection of the items you want to export. The amount of items that can be exported at once is similarly restricted as the full export.

    After making a selection, click one of the export format buttons. The amount of items that will be exported is indicated in the bubble next to export format.