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Target normal sheath ion acceleration by fs laser irradiating metal/reduced graphene oxide targets

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    0524204 - ÚJF 2021 RIV GB eng J - Journal Article
    Torrisi, L. - Rosinski, M. - Cutroneo, Mariapompea - Torrisi, Alfio - Badziak, J. - Zaras-Szydlowska, A. - Parys, P.
    Target normal sheath ion acceleration by fs laser irradiating metal/reduced graphene oxide targets.
    Journal of Instrumentation. Roč. 15, č. 3 (2020), č. článku C03056. ISSN 1748-0221. E-ISSN 1748-0221.
    [Conference on Plasma Physics by Laser and Applications (PPLA). Pisa, 29.10.2019-31.10.2019]
    Institutional support: RVO:61389005
    Keywords : plasma diagnostics * charged-particle spectroscopy * plasma generation
    OECD category: Fluids and plasma physics (including surface physics)
    Impact factor: 1.415, year: 2020
    Method of publishing: Limited access
    https://doi.org/10.1088/1748-0221/15/03/C03056

    Target normal sheath ion acceleration is applied with a high contrast fs laser irradiating advanced targets based on thin metallic films (Al, Cu, Ag and Au) covering micrometric foils of reduced graphene oxide (rGO). The laser intensity is of about 10(18) W/cm(2) and the laser focal position with respect to the target surface is optimized to have the maximum proton acceleration. Plasma diagnostics are investigated using time-of-flight technique employing SiC detectors, ion collectors, and gaf-chromic films. Micrometric aluminum absorbers were employed to separate the faster proton detection by other accelerated ions. At the optimized laser focal position, the maximum proton acceleration of 2.5MeV and 3.0 MeV energy was obtained using Ag(200 nm) and Au(200 nm) covering rGO(7 mu m) targets, respectively. The high proton energy is due to the high electrical and thermal conductivity and high mechanical resistance of the used rGO foils and to the high plasma electron density of the target.
    Permanent Link: http://hdl.handle.net/11104/0308583

     
     
Number of the records: 1  

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