Advanced Laser–Plasma Diagnostics for a Modular High-Repetition-Rate Plasma Electron Accelerator

Author:

Greb Christian123ORCID,Aktan Esin1ORCID,Adam Roman2ORCID,Dickson Alex4,Sire Cédric5,Nefedova Viktoria E.5,Sylla François5,Lopez-Martens Rodrigo6ORCID,Schneider Claus M.237ORCID,Faure Jérôme6ORCID,Büscher Markus12ORCID

Affiliation:

1. Institut für Laser-Und Plasmaphysik, Heinrich-Heine-Universität, Universitätsstr. 1, 40225 Düsseldorf, Germany

2. Forschungszentrum Jülich GmbH, Peter Grünberg Institute (PGI-6), 52428 Jülich, Germany

3. Fakultät für Physik, Universität Duisburg-Essen, 47048 Duisburg, Germany

4. Department of Physics, University of Strathclyde, SUPA, Room 2.74 McCance Building, 16 Richmond Street, Glasgow G1 1XQ, UK

5. SourceLAB, LOA/ENSTA Yvette, 181 Chemin de la Hunière, 91120 Palaiseau, France

6. LOA, CNRS, Ecole Polytechnique, ENSTA Paris, Institut Polytechnique de Paris, 91120 Palaiseau, France

7. Physics Department, University of California, Davis, CA 95616, USA

Abstract

We present a laser–plasma electron accelerator module designed to be driven by high-repetition-rate lasers for industrial applications of laser-driven electron beams. It consists of a single vacuum chamber containing all the necessary components for producing, optimizing, and monitoring electron beams generated via laser wakefield acceleration in a gas jet when driven by a suitable laser. The core methods in this paper involve a comprehensive metrological assessment of the driving laser by rigorous temporal laser pulse characterization and contrast measurements, supplemented by detailed spatiotemporal distribution analyses of the laser focus. Results demonstrate the good stability and reproducibility of the laser system, confirming its suitability for advanced scientific and industrial applications. We further demonstrate the functionality of the laser–plasma accelerator module diagnostics, perform target density characterizations, and time-resolved laser–plasma shadowgraphy. Current limitations of the set-up preventing first electron acceleration are analyzed and an outlook for future experiments is given. Our work is a first step towards the wide dissemination of fully integrated laser–plasma accelerator technology.

Funder

Helmholtz association fund

German Scientific Council

Agence Nationale de la Recherche

Publisher

MDPI AG

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