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Commissioning of the 1 PW experimental area at ELI-NP using a short focal parabolic mirror for proton acceleration
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作者 M.O.Cernaianu P.Ghenuche +34 位作者 F.Rotaru L.Tudor O.Chalus C.Gheorghiu d.c.popescu M.Gugiu S.Balascuta A.Magureanu M.Tataru V.Horny B.Corobean I.Dancus A.Alincutei T.Asavei B.Diaconescu L.Dinca D.B.Dreghici D.G.Ghita C.Jalba V.Leca A.M.Lupu V.Nastasa F.Negoita M.Patrascoiu F.Schimbeschi D.Stutman C.Ticos D.Ursescu A.Arefiev P.Tomassini V.Malka S.Gales K.A.Tanaka C.A.Ur D.Doria 《Matter and Radiation at Extremes》 2025年第2期35-49,共15页
High-power laser systems have opened new frontiers in scientifi research and have revolutionized various scientifi fields offering unprecedented capabilities for understanding fundamental physics and allowing unique a... High-power laser systems have opened new frontiers in scientifi research and have revolutionized various scientifi fields offering unprecedented capabilities for understanding fundamental physics and allowing unique applications.This paper details the successful commissioning of the 1 PW experimental area at the Extreme Light Infrastructure–Nuclear Physics(ELI-NP)facility in Romania,using both of the available laser arms.The experimental setup featured a short focal parabolic mirror to accelerate protons through the target normal sheath acceleration mechanism.Detailed experiments were conducted using various metallic and diamond-like carbon targets to investigate the dependence of the proton acceleration on different laser parameters.Furthermore,the paper discusses the critical role of the laser temporal profil in optimizing proton acceleration,supported by hydrodynamic simulations that are correlated with experimental outcomes.The finding underscore the potential of the ELI-NP facility to advance research in laser–plasma physics and contribute significantl to high-energy physics applications.The results of this commissioning establish a strong foundation for experiments by future users. 展开更多
关键词 nuclear physics scientifi fields short focal parabolic mirror extreme light infrastructure laser plasma physics scientifi research proton acceleration understanding fundamental physics
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Detailed characterization of a laboratory magnetized supercritical collisionless shock and of the associated proton energization 被引量:1
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作者 W.Yao A.Fazzini +19 位作者 S.N.Chen K.Burdonov P.Antici J.B´eard S.Bolaños A.Ciardi R.Diab E.D.Filippov S.Kisyov V.Lelasseux M.Miceli Q.Moreno V.Nastasa S.Orlando S.Pikuz d.c.popescu G.Revet X.Ribeyre E.d’Humi`eres J.Fuchs 《Matter and Radiation at Extremes》 SCIE EI CAS CSCD 2022年第1期15-28,共14页
Collisionless shocks are ubiquitous in the Universe and are held responsible for the production of nonthermal particles and high-energy radiation.In the absence of particle collisions in the system,theory shows that t... Collisionless shocks are ubiquitous in the Universe and are held responsible for the production of nonthermal particles and high-energy radiation.In the absence of particle collisions in the system,theory shows that the interaction of an expanding plasma with a pre-existing electromagnetic structure(as in our case)is able to induce energy dissipation and allow shock formation.Shock formation can alternatively take place when two plasmas interact,through microscopic instabilities inducing electromagnetic fields that are able in turn to mediate energy dissipation and shock formation.Using our platform in which we couple a rapidly expanding plasma induced by high-power lasers(JLF/Titan at LLNL and LULI2000)with high-strength magnetic fields,we have investigated the generation of a magnetized collisionless shock and the associated particle energization.We have characterized the shock as being collisionless and supercritical.We report here on measurements of the plasma density and temperature,the electromagnetic field structures,and the particle energization in the experiments,under various conditions of ambient plasma and magnetic field.We have also modeled the formation of the shocks using macroscopic hydrodynamic simulations and the associated particle acceleration using kinetic particle-in-cell simulations.As a companion paper to Yao et al.[Nat.Phys.17,1177–1182(2021)],here we show additional results of the experiments and simulations,providing more information to allow their reproduction and to demonstrate the robustness of our interpretation of the proton energization mechanism as being shock surfing acceleration. 展开更多
关键词 field COLLISION shock
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