Toward high-energy laser-driven ion beams: Nanostructured double-layer targets

M. Passoni(Politecnico di Milano), A. Sgattoni(Istituto Nazionale di Ottica), Irene Prencipe(Helmholtz-Zentrum Dresden-Rossendorf), Luca Fedeli(University of Pisa), D. Dellasega(Politecnico di Milano), L. Cialfi(Politecnico di Milano), Il Woo Choi(Gwangju Institute of Science and Technology), I Jong Kim(Institute for Basic Science), K. A. Janulewicz(Institute for Basic Science), Hwang Woon Lee(Institute for Basic Science), Jae Hee Sung(Gwangju Institute of Science and Technology), Seong Ku Lee(Gwangju Institute of Science and Technology), Chang Hee Nam(Institute for Basic Science)
Physical Review Accelerators and Beams
June 20, 2016
Cited by 67Open Access
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Abstract

The development of novel target concepts is crucial to make laser-driven acceleration of ion beams suitable for applications. We tested double-layer targets formed of an ultralow density nanostructured carbon layer ($\ensuremath{\sim}7\text{ }\text{ }{\mathrm{mg}/\mathrm{cm}}^{3}$, $8--12\text{ }\text{ }\ensuremath{\mu}\mathrm{m}$--thick) deposited on a $\ensuremath{\mu}\mathrm{m}$--thick solid Al foil. A systematic increase in the total number of the accelerated ions (protons and ${\mathrm{C}}^{6+}$) as well as enhancement of both their maximum and average energies was observed with respect to bare solid foil targets. Maximum proton energies up to 30 MeV were recorded. Dedicated three-dimensional particle-in-cell simulations were in remarkable agreement with the experimental results, giving clear indication of the role played by the target nanostructures in the interaction process.


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