Proton acceleration in an overdense hydrogen plasma by intense CO2 laser pulses with nonlinear propagation effects in the underdense pre-plasma

Author:

Chen Yu-Hsin1ORCID,Ting Antonio C.2ORCID,Hafizi Bahman1ORCID,Helle Michael H.1,Johnson Luke A.3ORCID,Polyanskiy Mikhail N.4ORCID,Pogorelsky Igor V.4ORCID,Babzien Marcus4ORCID,Dover Nicholas P.5ORCID,Ettlinger Oliver C.5,Hicks George S.5ORCID,Ditter Emma-Jane5,Najmudin Zulfikar5ORCID,Gordon Daniel F.1ORCID

Affiliation:

1. Plasma Physics Division, Naval Research Laboratory 1 , Washington, District of Columbia 20375, USA

2. Institute for Research in Electronics and Applied Physics, University of Maryland 2 , College Park, Maryland 20740, USA

3. The MITRE Corporation 3 , McLean, Virginia 22102, USA

4. Accelerator Test Facility, Brookhaven National Laboratory 4 , Upton, New York 11973, USA

5. The John Adams Institute for Accelerator Science, Imperial College London 5 , London SW7 2AZ, United Kingdom

Abstract

We report on proton acceleration from intense CO2 laser-irradiated hydrogen plasmas at near-critical densities, with the density gradient steepened by Nd:YAG laser ablation-driven hydrodynamic shocks. While the experimental results, such as the quasi-monoenergetic proton spectra and their scaling with respect to the laser energy, are generally in agreement with the simulations, certain laser shots produced significantly higher proton energies than anticipated during the experiment. The increased proton energy may be linked to nonlinear propagation effects in the steepened plasma density ramp before the critical surface, including relativistic self-focusing and, for the case of temporally-structured laser pulses observed in the experiment, focusing of the trailing pulse through the plasma channel formed by the leading pulse 25 ps ahead. The occurrence of channel focusing in the underdense hydrogen plasma is supported by a subsequent pump-probe experiment with a dark-field imaging technique, where the formation of ion channels was observed after the passage of an intense CO2 laser pulse.

Funder

U.S. Department of Energy

U.S. Naval Research Laboratory

Publisher

AIP Publishing

Subject

Condensed Matter Physics

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