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Volume 10 Issue 2
Mar.  2025
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Article Contents
Cernaianu M. O., Ghenuche P., Rotaru F., Tudor L., Chalus O., Gheorghiu C., Popescu D. C., Gugiu M., Balascuta S., Magureanu A., Tataru M., Horny V., Corobean B., Dancus I., Alincutei A., Asavei T., Diaconescu B., Dinca L., Dreghici D. B., Ghita D. G., Jalba C., Leca V., Lupu A. M., Nastasa V., Negoita F., Patrascoiu M., Schimbeschi F., Stutman D., Ticos C., Ursescu D., Arefiev A., Tomassini P., Malka V., Gales S., Tanaka K. A., Ur C. A., Doria D.. Commissioning of the 1 PW experimental area at ELI-NP using a short focal parabolic mirror for proton acceleration[J]. Matter and Radiation at Extremes, 2025, 10(2): 027204. doi: 10.1063/5.0241077
Citation: Cernaianu M. O., Ghenuche P., Rotaru F., Tudor L., Chalus O., Gheorghiu C., Popescu D. C., Gugiu M., Balascuta S., Magureanu A., Tataru M., Horny V., Corobean B., Dancus I., Alincutei A., Asavei T., Diaconescu B., Dinca L., Dreghici D. B., Ghita D. G., Jalba C., Leca V., Lupu A. M., Nastasa V., Negoita F., Patrascoiu M., Schimbeschi F., Stutman D., Ticos C., Ursescu D., Arefiev A., Tomassini P., Malka V., Gales S., Tanaka K. A., Ur C. A., Doria D.. Commissioning of the 1 PW experimental area at ELI-NP using a short focal parabolic mirror for proton acceleration[J]. Matter and Radiation at Extremes, 2025, 10(2): 027204. doi: 10.1063/5.0241077

Commissioning of the 1 PW experimental area at ELI-NP using a short focal parabolic mirror for proton acceleration

doi: 10.1063/5.0241077
More Information
  • Author Bio:

    Current address: Horia Hulubei National Institute of Physics and Nuclear Engineering (IFIN-HH), RO-077125 Bucharest, Romania.

  • Corresponding author: b)Author to whom correspondence should be addressed: domenico.doria@eli-np.ro
  • Received Date: 2024-09-28
  • Accepted Date: 2025-02-01
  • Available Online: 2025-04-08
  • Publish Date: 2025-03-01
  • High-power laser systems have opened new frontiers in scientific research and have revolutionized various scientific 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 profile in optimizing proton acceleration, supported by hydrodynamic simulations that are correlated with experimental outcomes. The findings underscore the potential of the ELI-NP facility to advance research in laser–plasma physics and contribute significantly to high-energy physics applications. The results of this commissioning establish a strong foundation for experiments by future users.
  • Conflict of Interest
    The authors have no conflicts to disclose.
    M. O. Cernaianu: Conceptualization (lead); Data curation (lead); Formal analysis (lead); Investigation (lead); Methodology (lead); Resources (lead); Software (equal); Supervision (lead); Validation (lead); Visualization (lead); Writing – original draft (lead); Writing – review & editing (lead). P. Ghenuche: Conceptualization (lead); Data curation (lead); Formal analysis (lead); Investigation (equal); Methodology (equal); Resources (equal); Software (equal); Supervision (lead); Validation (equal); Visualization (equal); Writing – original draft (equal); Writing – review & editing (equal). F. Rotaru: Conceptualization (equal); Data curation (lead); Formal analysis (lead); Investigation (equal); Methodology (equal); Resources (equal); Supervision (equal); Validation (equal); Visualization (equal); Writing – original draft (equal); Writing – review & editing (equal). L. Tudor: Conceptualization (equal); Investigation (supporting); Supervision (equal). O. Chalus: Investigation (supporting); Methodology (supporting); Writing – original draft (supporting). C. Gheorghiu: Investigation (supporting); Methodology (supporting); Resources (supporting); Writing – original draft (supporting). D. C. Popescu: Data curation (supporting); Formal analysis (supporting); Methodology (supporting); Resources (supporting); Software (equal). M. Gugiu: Data curation (equal); Formal analysis (equal); Investigation (equal); Resources (equal); Software (equal); Writing – original draft (equal). S. Balascuta: Data curation (equal); Formal analysis (equal); Investigation (equal); Resources (equal). A. Magureanu: Data curation (supporting); Formal analysis (supporting); Investigation (equal); Methodology (supporting). M. Tataru: Methodology (supporting); Resources (supporting). V. Horny: Data curation (supporting); Investigation (supporting); Methodology (supporting); Resources (equal); Software (equal). B. Corobean: Data curation (supporting); Investigation (supporting); Methodology (supporting); Resources (equal); Software (equal). I. Dancus: Data curation (supporting); Formal analysis (supporting); Investigation (equal); Methodology (equal); Resources (equal); Software (equal); Supervision (equal); Validation (equal); Visualization (equal); Writing – original draft (supporting). A. Alincutei: Investigation (supporting); Methodology (supporting). T. Asavei: Investigation (supporting). B. Diaconescu: Investigation (supporting); Resources (supporting). L. Dinca: Resources (supporting). D. B. Dreghici: Data curation (supporting); Investigation (supporting); Methodology (supporting); Resources (equal); Software (equal). D. G. Ghita: Investigation (supporting). C. Jalba: Resources (supporting). V. Leca: Resources (supporting); Writing – original draft (supporting). A. M. Lupu: Investigation (supporting). V. Nastasa: Formal analysis (supporting); Investigation (equal). F. Negoita: Conceptualization (supporting). M. Patrascoiu: Investigation (supporting). F. Schimbeschi: Investigation (supporting). D. Stutman: Conceptualization (supporting). C. Ticos: Formal analysis (supporting); Investigation (supporting); Methodology (supporting). D. Ursescu: Methodology (supporting). A. Arefiev: Resources (supporting); Software (supporting). P. Tomassini: Investigation (equal); Methodology (equal); Resources (equal); Software (equal). C. A. Ur: Conceptualization (supporting); Funding acquisition (lead); Project administration (lead); Resources (lead). V. Malka: Conceptualization (supporting); Data curation (supporting); Writing – review & editing (supporting). S. Gales: Methodology (supporting). K. A. Tanaka: Data curation (supporting); Investigation (supporting); Methodology (supporting); Supervision (supporting). D. Doria: Conceptualization (lead); Data curation (lead); Formal analysis (lead); Investigation (lead); Methodology (lead); Resources (lead); Software (equal); Supervision (lead); Validation (lead); Visualization (lead); Writing – original draft (lead); Writing – review & editing (lead).
    Author Contributions
    The data that support the findings of this study are available from the corresponding author upon reasonable request.
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  • [1]
    A. Macchi, M. Borghesi, and M. Passoni, “Ion acceleration by superintense laser-plasma interaction,” Rev. Mod. Phys. 85, 751–793 (2013).10.1103/RevModPhys.85.751
    [2]
    G. A. Mourou, T. Tajima, and S. V. Bulanov, “Optics in the relativistic regime,” Rev. Mod. Phys. 78, 309 (2006).10.1103/RevModPhys.78.309
    [3]
    C. N. Danson, C. Haefner, J. Bromage, T. Butcher, J.-C. F. Chanteloup et al., “Petawatt and exawatt class lasers worldwide,” High Power Laser Sci. Eng. 7, e54 (2019).10.1017/hpl.2019.36
    [4]
    H. Daido, M. Nishiuchi, and A. S. Pirozhkov, “Review of laser-driven ion sources and their applications,” Rep. Prog. Phys. 75, 056401 (2012).10.1088/0034-4885/75/5/056401
    [5]
    B. Albertazzi, A. Ciardi, M. Nakatsutsumi, T. Vinci, J. Béard et al., “Laboratory formation of a scaled protostellar jet by coaligned poloidal magnetic field,” Science 346, 325–328 (2014); https://www.jstor.org/stable/24917377.10.1126/science.1259694
    [6]
    M. Roth, T. E. Cowan, M. H. Key, S. P. Hatchett, C. Brown et al., “Fast ignition by intense laser-accelerated proton beams,” Phys. Rev. Lett. 86, 436 (2001).10.1103/PhysRevLett.86.436
    [7]
    M. Roth, D. Jung, K. Falk, N. Guler, O. Deppert et al., “Bright laser-driven neutron source based on the relativistic transparency of solids,” Phys. Rev. Lett. 110, 044802 (2013).10.1103/PhysRevLett.110.044802
    [8]
    C. Graeff, L. Volz, and M. Durante, “Emerging technologies for cancer therapy using accelerated particles,” Prog. Part. Nucl. Phys. 131, 104046 (2023).10.1016/j.ppnp.2023.104046
    [9]
    J. Fuchs, P. Antici, E. d’Humières, E. Lefebvre, M. Borghesi et al., “Laser-driven proton scaling laws and new paths towards energy increase,” Nat. Phys. 2, 48–54 (2006).10.1038/nphys199
    [10]
    K. Markey, P. McKenna, C. M. Brenner, D. C. Carroll, M. M. Günther et al., “Spectral enhancement in the double pulse regime of laser proton acceleration,” Phys. Rev. Lett. 105, 195008 (2010).10.1103/physrevlett.105.195008
    [11]
    M. King, R. Wilson, E. F. J. Bacon, E. J. Dolier, T. P. Frazer et al., “Perspectives on laser-plasma physics in the relativistic transparency regime,” Eur. Phys. J. A 59, 132 (2023).10.1140/epja/s10050-023-01043-2
    [12]
    A. Higginson, R. Gray, M. King, R. J. Dance, S. D. R. Williamson et al., “Near-100 MeV protons via a laser-driven transparency-enhanced hybrid acceleration scheme,” Nat. Commun. 9, 724 (2018).10.1038/s41467-018-03063-9
    [13]
    F. Albert, M. E. Couprie, A. Debus, M. C. Downer, J. Faure et al., “2020 roadmap on plasma accelerators,” New J. Phys. 23, 031101 (2021).10.1088/1367-2630/abcc62
    [14]
    J. Hornung, Y. Zobus, P. Boller, C. Brabetz, U. Eisenbarth et al., “Enhancement of the laser-driven proton source at PHELIX,” High Power Laser Sci. Eng. 8, e24 (2020).10.1017/hpl.2020.23
    [15]
    I. J. Kim, K. H. Pae, I. W. Choi, C.-L. Lee, H. T. Kim et al., “Radiation pressure acceleration of protons to 93 MeV with circularly polarized petawatt laser pulses,” Phys. Plasmas 23, 070701 (2016).10.1063/1.4958654
    [16]
    T. Ziegler, I. Göthel, S. Assenbaum, C. Bernert, F.-E. Brack et al., “Laser-driven high-energy proton beams from cascaded acceleration regimes,” Nat. Phys. 20, 1211–1216 (2024).10.1038/s41567-024-02505-0
    [17]
    T. Ziegler, D. Albach, C. Bernert et al., “Proton beam quality enhancement by spectral phase control of a PW-class laser system,” Sci. Rep. 11, 7338 (2021).10.1038/s41598-021-86547-x
    [18]
    T. Esirkepov, M. Borghesi, S. V. Bulanov, G. A. Mourou, and T. Tajima, “Highly efficient relativistic-ion generation in the laser-piston regime,” Phys. Rev. Lett. 92, 175003 (2004).10.1103/PhysRevLett.92.175003
    [19]
    P. McKenna, D. C. Carroll, O. Lundh, F. Nürnberg, K. Markey et al., “Effects of front surface plasma expansion on proton acceleration in ultraintense laser irradiation of foil targets,” Laser Part. Beams 26, 591–596 (2008).10.1017/S0263034608000657
    [20]
    N. P. Dover, T. Ziegler, S. Assenbaum, C. Bernert, S. Bock et al., “Enhanced ion acceleration from transparency-driven foils demonstrated at two ultraintense laser facilities,” Light: Sci. Appl. 12, 71 (2023).10.1038/s41377-023-01083-9
    [21]
    F. Lureau, G. Matras, O. Chalus, C. Derycke, T. Morbieu et al., “High-energy hybrid femtosecond laser system demonstrating 2 × 10 PW capability,” High Power Laser Sci. Eng. 8, e43 (2020).10.1017/hpl.2020.41
    [22]
    C. Radier, O. Chalus, M. Charbonneau, S. Thambirajah, G. Deschamps et al., “10 PW peak power femtosecond laser pulses at ELI-NP,” High Power Laser Sci. Eng. 10, e21 (2022).10.1017/hpl.2022.11
    [23]
    K. A. Tanaka, K. M. Spohr, D. L. Balabanski, S. Balascuta, L. Capponi et al., “Current status and highlights of the ELI-NP research program,” Matter Radiat. Extremes 5, 024402 (2020).10.1063/1.5093535
    [24]
    S. Gales, K. A. Tanaka, D. L. Balabanski, F. Negoita, D. Stutman et al., “The extreme light infrastructure—nuclear physics (ELI-NP) facility: New horizons in physics with 10 PW ultra-intense lasers and 20 MeV brilliant gamma beams,” Rep. Prog. Phys. 81, 094301 (2018).10.1088/1361-6633/aacfe8
    [25]
    H. Kiriyama, Y. Miyasaka, A. Kon, M. Nishiuchi, A. Sagisaka et al., “Laser output performance and temporal quality enhancement at the J-KAREN-P petawatt laser facility,” Photonics 10, 997 (2023).10.3390/photonics10090997
    [26]
    J. Bromage, C. Dorrer, and R. K. Jungquist, “Temporal contrast degradation at the focus of ultrafast pulses from high-frequency spectral phase modulation,” J. Opt. Soc. Am. B 29, 1125–1135 (2012).10.1364/JOSAB.29.001125
    [27]
    S. Roeder, Y. Zobus, C. Brabetz, and V. Bagnoud, “How the laser beam size conditions the temporal contrast in pulse stretchers of chirped-pulse amplification lasers,” High Power Laser Sci. Eng. 10, e34 (2022).10.1017/hpl.2022.18
    [28]
    C. C. Gheorghiu, S. C. Ionescu, P. Ghenuche, M. O. Cernaianu, D. Doria et al., “Structuring free-standing foils for laser-driven particle acceleration experiments,” Front. Phys. 9, 727498 (2021).10.3389/fphy.2021.727498
    [29]
    [30]
    P. L. Poole, L. Obst, G. E. Cochran, J. Metzkes, H.-P. Schlenvoigt et al., “Laser-driven ion acceleration via target normal sheath acceleration in the relativistic transparency regime,” New J. Phys. 20, 013019 (2018).10.1088/1367-2630/aa9d47
    [31]
    K. Burdonov, A. Fazzini, V. Lelasseux, J. Albrecht, P. Antici et al., “Characterization and performance of the Apollon short-focal-area facility following its commissioning at 1 PW level,” Matter Radiat. Extremes 6(6), 064402 (2021).10.1063/5.0065138
    [32]
    L. Obst, J. Metzkes-Ng, S. Bock, G. E. Cochran, T. E. Cowan et al., “On-shot characterization of single plasma mirror temporal contrast improvement,” Plasma Phys. Controlled Fusion 60, 054007 (2018).10.1088/1361-6587/aab3bb
    [33]
    [34]
    Y. Cai, W. Wang, C. Xia, J. Liu, L. Liu et al., “Time-resolved measurements on reflectivity of an ultrafast laser-induced plasma mirror,” Phys. Plasmas 16, 103104 (2009).10.1063/1.3247865
    [35]
    M. Zimmer, S. Scheuren, T. Ebert, G. Schaumann, B. Schmitz et al., “Analysis of laser-proton acceleration experiments for development of empirical scaling laws,” Phys. Rev. E 104, 045210 (2021).10.1103/PhysRevE.104.045210
    [36]
    R. Wilson, M. King, N. M. H. Butler, D. C. Carroll, T. P. Frazer et al., “Influence of spatial-intensity contrast in ultraintense laser–plasma interactions,” Sci. Rep. 12, 1910 (2022).10.1038/s41598-022-05655-4
    [37]
    J. S. Green, A. P. L. Robinson, N. Booth, D. C. Carroll, R. J. Dance et al., “High efficiency proton beam generation through target thickness control in femtosecond laser-plasma interactions,” Appl. Phys. Lett. 104, 214101 (2014).10.1063/1.4879641
    [38]
    J. J. MacFarlane, I. E. Golovkin, and P. R. Woodruff, “HELIOS-CR – A 1-D radiation-magnetohydrodynamics code with inline atomic kinetics modeling,” J. Quant. Spectrosc. Radiat. Transfer 99, 381–397 (2006).10.1016/j.jqsrt.2005.05.031
    [39]
    S. Palaniyappan, C. Huang, D. C. Gautier, C. E. Hamilton, M. A. Santiago et al., “Efficient quasi-monoenergetic ion beams from laser-driven relativistic plasmas,” Nat. Commun. 6, 10170 (2015).10.1038/ncomms10170
    [40]
    [41]
    D. Batani, R. Jafer, M. Veltcheva, R. Dezulian, O. Lundh et al., “Effects of laser prepulses on laser-induced proton generation,” New J. Phys. 12, 045018 (2010).10.1088/1367-2630/12/4/045018
    [42]
    L. Yang, L. Huang, S. Assenbaum, T. E. Cowan, I. Goethel et al., “Time-resolved optical shadowgraphy of solid hydrogen jets as a testbed to benchmark particle-in-cell simulations,” Commun. Phys. 6, 368 (2023).10.1038/s42005-023-01473-w
    [43]
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