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A micrometre long pre-plasma leads to a three-fold proton energy enhancement in Target Normal Sheath Acceleration by enabling an improved laser-to-electron coupling

ORAL

Abstract

Target Normal Sheath Acceleration has attracted much interest over the past twenty years as a promising, compact and affordable ion source. Important challenges still affecting this consolidated laser-driven ion acceleration scheme regard the increase of the maximum ion energy and the improvement of the beam quality.

In this work, we present novel experimental results demonstrating a three-fold energy enhancement obtained by pre-expanding in a controlled way the front surface of not-so-thin solid targets (Gizzi et al. 2021 Sci. Rep. 11, 13728). Using a pre-pulse, a 5-10 μm scale-length pre-plasma has been created on the front surface of 25 μm Titanium targets, leading to proton cutoff energies up to 12 MeV as opposite to 4 MeV achieved without pre-plasma. Particle-In-Cell simulations modelling the experimental conditions show a very complex and rich laser dynamics in the long underdense region with the creation of standing waves. This causes electrons to undergo stochastics motion thus enabling a more efficient heating mechanism. As a result, protons from the contaminant layer on the back surface of the target are accelerated to higher energies. Interestingly, the presence of a long-scale pre-plasma seems also beneficial to reduce the divergence of the accelerated ions.   

Publication: Gizzi, L.A., Boella, E., Labate, L. et al. Enhanced laser-driven proton acceleration via improved fast electron heating in a controlled pre-plasma. Sci Rep 11, 13728 (2021). https://doi.org/10.1038/s41598-021-93011-3.

Presenters

  • Elisabetta Boella

    Lancaster Univ, Lancaster University, Physics Department, Lancaster University, Bailrigg, UK, Physics Department, Lancaster University, Lancaster (UK)

Authors

  • Elisabetta Boella

    Lancaster Univ, Lancaster University, Physics Department, Lancaster University, Bailrigg, UK, Physics Department, Lancaster University, Lancaster (UK)

  • Leonida Gizzi

    Intense Laser Irradiation Laboratory, INO-CNR, Pisa, Italy

  • Luca Labate

    Intense Laser Irradiation Laboratory, INO-CNR, Pisa, Italy

  • Federica Baffigi

    Intense Laser Irradiation Laboratory, INO-CNR, Pisa, Italy

  • Pablo J Bilbao

    Instituto Superior Técnico, Lisboa, Portugal, GoLP/Instituto de Plasmas e Fusão Nuclear, Instituto Superior Técnico, Universidade de Lisboa, 1049-001 Lisboa, Portugal, GoLP/IPFN, Instituto Superior Tecnico, Lisbon, Portugal

  • Fernando Brandi

    Intense Laser Irradiation Laboratory, INO-CNR, Pisa, Italy

  • Gabriele Cristoforetti

    Intense Laser Irradiation Laboratory, INO-CNR, Pisa, Italy

  • Alberto Fazzi

    Dipartimento di Energia, Politecnico di Milano, Milan, Italy

  • Lorenzo Fulgentini

    Intense Laser Irradiation Laboratory, INO-CNR, Pisa, Italy

  • Dario Giove

    INFN-LASA, Segrate, Italy

  • Petra Koester

    Intense Laser Irradiation Laboratory, INO-CNR, Pisa, Italy

  • Daniele Palla

    Intense Laser Irradiation Laboratory, INO-CNR, Pisa, Italy

  • Paolo Tomassini

    Intense Laser Irradiation Laboratory, INO-CNR, Pisa, Italy