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    Elevated Electron Temperature Coincident with Observed Fusion Reactions in a Sheared-Flow-Stabilized Z Pinch

    B. Levitt1,*, C. Goyon2, J. T. Banasek3, S. C. Bott-Suzuki3, C. Liekhus-Schmaltz1, E. T. Meier1, L. A. Morton1, A. Taylor1, W. C. Young1 et al.

    B. A. Nelson1, D. A. Sutherland1, M. Quinley1, A. D. Stepanov1, J. R. Barhydt1, P. Tsai1, K. D. Morgan1, N. van Rossum1, A. C. Hossack1, T. R. Weber1, W. A. McGehee1, P. Nguyen1, A. Shah1, S. Kiddy1, M. Van Patten1, A. E. Youmans2, D. P. Higginson2, H. S. McLean2, G. A. Wurden4, and U. Shumlak1,5,†

    • 1Zap Energy Inc., Seattle, Washington 98203, USA
    • 2Lawrence Livermore National Laboratory, 7000 East Avenue, Livermore, California 94550, USA
    • 3University of California San Diego, La Jolla, California 92093, USA
    • 4Los Alamos National Laboratory, Los Alamos, New Mexico 87545, USA
    • 5Aerospace and Energetics Research Program, University of Washington, Seattle, Washington 98195, USA

    • *blevitt@zap.energy
    • †shumlak@uw.edu

    Phys. Rev. Lett. 132, 155101 – Published 8 April, 2024

    DOI: https://doi.org/10.1103/PhysRevLett.132.155101

    Abstract

    The sheared-flow-stabilized Z pinch concept has been studied extensively and is able to produce fusion-relevant plasma parameters along with neutron production over several microseconds. We present here elevated electron temperature results spatially and temporally coincident with the plasma neutron source. An optical Thomson scattering apparatus designed for the FuZE device measures temperatures in the range of 1–3 keV on the axis of the device, 20 cm downstream of the nose cone. The 17-fiber system measures the radial profiles of the electron temperature. Scanning the laser time with respect to the neutron pulse time over a series of discharges allows the reconstruction of the Te temporal response, confirming that the electron temperature peaks simultaneously with the neutron output, as well as the pinch current and inductive voltage generated within the plasma. Comparison to spectroscopic ion temperature measurements suggests a plasma in thermal equilibrium. The elevated Te confirms the presence of a plasma assembled on axis, and indicates limited radiative losses, demonstrating a basis for scaling this device toward net gain fusion conditions.

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