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First STUD pulse experiments on controlling Resonantly excited electron plasma waves in high energy density plasmas.

POSTER

Abstract

Spike Trains of Uneven Duration and Delay (STUD pulses) are a promising means of controlling Laser Plasma Instabilities (LPI) by modulating the laser on the instability growth timescale. The nonlinear evolution of resonantly driven electron plasma waves involves disparate timescales: the plasma frequency, instability growth time, plasma wave walk-off time trapping time, wavebreaking time, and nonlinear self-organized phase-space-structure recurrence time. To optimize STUD pulses for LPI control, it is necessary to navigate between these various timescales. Using the high repetition rate, short pulse, petawatt laser system ALEPH at CSU, we have conducted the first STUD pulse optimization experiments of Resonance Absorption (RA) generated plasma waves and their control. 3358 shots were dedicated to the exploration of RA physics. We varied the angle between the 800 nm heater and interaction beams and their mutual delay, to change the density scalelength and plasma temperature. The amplitudes, durations, and delays between the 10 spike sequences were systematically varied and scattered spectra measured at 800, 400, 566, and 1600 nm. We will show the STUD pulse conditions that result in the largest stable plasma waves we could generate due to RA at nc and Stimulated Rahman Scattering (SRS) at nc /4.

Publication: 2010. B. Afeyan and S. Hüller, Optimal Control of Laser-Plasma Instabilities Using Spike Trains of Uneven Duration and Delay: STUD Pulses, 2013. See http://arxiv.org/pdf/1304.3960.pdf, B. Afeyan and S. Hüller, Optimal Control of Laser Plasma Instabilities Using Spike Trains of Uneven Duration and Delay (STUD Pulses) for ICF and IFE, EPJ Web of Conferences 59, 05009 (2013). See http://arxiv.org/pdf/1210.4462.pdf. B. Albright, L. Yin, B. Afeyan, Control of stimulated Raman scattering in the strongly nonlinear and kinetic regime using spike trains of uneven duration and delay (STUD Pulses), Phys. Rev. Lett., 113, 045002, 2014.

Presenters

  • Ethan Welch

    University of Nebraska - Lincoln

Authors

  • Ethan Welch

    University of Nebraska - Lincoln

  • Kyle Jensen

    UNIVERSITY OF LINCOLN NEBRASKA, Univeristy of Nebraska

  • Matthias Fuchs

    University of Nebraska - Lincoln

  • Bedros B Afeyan

    Polymath Research Inc

  • Jeffrey A Hittinger

    Lawrence Livermore Natl Lab

  • Sean M Finnegan

    Los Alamos National Laboratory

  • John L Kline

    Los Alamos Natl Lab

  • Reed C Hollinger

    Colorado State University

  • Shoujun Wang

    Colorado State University

  • Jorge J Rocca

    Colorado State University