Plasma Photocathodes

Author:

Habib Ahmad Fahim12ORCID,Heinemann Thomas12ORCID,Manahan Grace G.12,Ullmann Daniel12,Scherkl Paul3ORCID,Knetsch Alexander4ORCID,Sutherland Andrew12,Beaton Andrew12,Campbell David12,Rutherford Lorne12,Boulton Lewis12,Nutter Alastair12,Hewitt Adam12,Dickson Alexander12,Karger Oliver S.5,Litos Michael D.6ORCID,O'Shea Brendon D.7,Andonian Gerard8,Bruhwiler David L.9,Pretzler Georg10,Wilson Thomas12,Sheng Zhengming11,Stumpf Michael10,Reichwein Lars12,Pukhov Alexander12,Cary John R.13,Hogan Mark J.7,Yakimenko Vitaly7,Rosenzweig James B.14,Hidding Bernhard12ORCID

Affiliation:

1. Scottish Universities Physics Alliance, Department of Physics University of Strathclyde Glasgow UK

2. Cockcroft Institute, Sci‐Tech Daresbury Daresbury, Cheshire UK

3. University Medical Center Hamburg‐Eppendorf: Universitatsklinikum Hamburg‐Eppendorf Martinistr. 52 37734 Hamburg Germany

4. LOA, ENSTA Paris, CNRS, Ecole Polytechnique Institut Polytechnique de Paris 91762 Palaiseau France

5. OHB System AG Universitätsallee 27 Bremen Germany

6. Center for Integrated Plasma Studies, Department of Physics University of Colorado Boulder CO USA

7. SLAC National Accelerator Laboratory Menlo Park CA USA

8. Radiabeam Technologies Santa Monica CA 90404 USA

9. RadiaSoft LLC Boulder CO 80301 USA

10. Institut für Laser‐ und Plasmaphysik Heinrich‐Heine‐Universität Düsseldorf 40225 Düsseldorf Germany

11. Key Laboratory for Laser Plasmas (MoE), School of Physics and Astronomy Shanghai Jiao Tong University Shanghai 200240 China

12. Institut für Theoretische Physik I Heinrich‐Heine‐Universität Düsseldorf 40225 Düsseldorf Germany

13. Tech‐X Corporation Boulder CO USA

14. Department of Physics and Astronomy University of California Los Angeles Los Angeles CA USA

Abstract

AbstractPlasma wakefield accelerators offer accelerating and focusing electric fields three to four orders of magnitude larger than state‐of‐the‐art radiofrequency cavity‐based accelerators. Plasma photocathodes can release ultracold electron populations within such plasma waves and thus open a path toward tunable production of well‐defined, compact electron beams with normalized emittance and brightness many orders of magnitude better than state‐of‐the‐art. Such beams will have far‐reaching impact for applications such as light sources, but also open up new vistas on high energy and high field physics. This paper reviews the innovation of plasma photocathodes, and reports on the experimental progress, challenges, and future prospects of the approach. Details of the proof‐of‐concept demonstration of a plasma photocathode in 90° geometry at SLAC FACET within the E‐210: Trojan Horse program are described. Using this experience, alongside theoretical and simulation‐supported advances, an outlook is given on future realizations of plasma photocathodes such as the upcoming E‐310: Trojan Horse‐II program at FACET‐II with prospects toward excellent witness beam parameter quality, tunability, and stability. Future installations of plasma photocathodes also at compact, hybrid plasma wakefield accelerators, will then boost capacities and open up novel capabilities for experiments at the forefront of interaction of high brightness electron and photon beams.

Funder

Engineering and Physical Sciences Research Council

Norges Forskningsråd

National Energy Research Scientific Computing Center

National Science Foundation

National Natural Science Foundation of China

U.S. Department of Energy

European Research Council

Science and Technology Facilities Council

Publisher

Wiley

Subject

General Physics and Astronomy

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