Temporal evolution of the light emitted by a thin, laser-ionized plasma source

Author:

Lee Valentina1ORCID,Ariniello Robert2ORCID,Doss Christopher1ORCID,Wolfinger Kathryn3ORCID,Stoltz Peter4ORCID,Hansel Claire1,Gessner Spencer2ORCID,Cary John15ORCID,Litos Michael1ORCID

Affiliation:

1. Department of Physics, University of Colorado Boulder 1 , Boulder, Colorado 80309, USA

2. SLAC National Accelerator Laboratory 2 , 2575 Sand Hill Rd., Menlo Park, California 94025, USA

3. RadiaSoft LLC 3 , 1790 38th St Suite 306, Boulder, Colorado 80301, USA

4. Zap Energy 4 , 5901 23rd Dr W Everett, Washington 98203, USA

5. Tech-X 5 , 5621 Arapahoe Avenue Suite A Boulder, Colorado 80303, USA

Abstract

We present an experimental and simulation-based investigation of the temporal evolution of light emission from a thin, laser-ionized helium plasma source. We demonstrate an analytic model to calculate the approximate scaling of the time-integrated, on-axis light emission with the initial plasma density and temperature, supported by the experiment, which enhances the understanding of plasma light measurement for plasma wakefield accelerator (PWFA) plasma sources. Our model simulates the plasma density and temperature using a split-step Fourier code and a particle-in-cell code. A fluid simulation is then used to model the plasma and neutral density, and the electron temperature as a function of time and position. We then show the numerical results of the space-and-time-resolved light emission and that collisional excitation is the dominant source of light emission. We validate our model by measuring the light emitted by a laser-ionized plasma using a novel statistical method capable of resolving the nanosecond-scale temporal dynamics of the plasma light using a cost-effective camera with microsecond-scale timing jitter. This method is ideal for deployment in the high radiation environment of a particle accelerator that precludes the use of expensive nanosecond-gated cameras. Our results show that our models can effectively simulate the dynamics of a thin, laser-ionized plasma source. In addition, this work provides a detailed understanding of the plasma light measurement, which is one of the few diagnostic signals available for the direct measurement of PWFA plasma sources.

Funder

U.S. Department of Energy

National Science Foundation, Division of Physics

Publisher

AIP Publishing

Subject

Condensed Matter Physics

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