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April 8, 2026Physics of Plasmas1 citationsOpen Access

Quantum kinetic modeling of KEEN waves in a warm-dense regime

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FPF. Alejandro Padilla-GomezSGSining GongMMM. S. Murillo

Key Points

  • The aim is to explore how quantum effects influence KEEN waves in a warm-dense regime, impacting electron dynamics.
  • Utilized a second-order Strang-split 1D1V Wigner-Poisson solver.
  • Coupled conservative semi-Lagrangian WENO advection with Fourier space updates.
  • Focused on collisionless dynamics in a weakly coupled plasma.
  • Applied frequency-tuned ponderomotive pulses.
  • Quantum diffraction erodes classical trapping mechanisms.
  • Higher harmonics are damped and threshold for KEEN formation increases.
  • Electron vortices diffuse with rising quantum parameter H.
  • Subplasma electrostatic energy relaxes to a lower level, as confirmed by wavelet analysis.

Abstract

We report the first fully kinetic, quantum study of kinetic electrostatic electron nonlinear (KEEN) waves, showing that quantum diffraction systematically erodes the classical trapping mechanism, narrows harmonic locking to the fundamental, and hastens post-drive decay. Electrons are evolved with a second-order Strang-split 1D1V Wigner–Poisson solver that couples conservative semi-Lagrangian WENO advection to an analytic Fourier space update for the non-local Wigner term, while ions remain classical. We focus on collisionless dynamics in a weakly coupled regime, providing a controlled baseline before collisional extensions. Short, frequency-tuned ponderomotive pulses drive KEEN formation in a uniform Maxwellian plasma; as the dimensionless quantum parameter H rises from the classical limit to values relevant to warm-dense matter, doped semiconductors, and 2D electron systems, the drive threshold increases, higher harmonics are damped, trapped electron vortices diffuse, and the subplasma electrostatic energy relaxes to a lower stationary level, as confirmed by continuous wavelet analysis. These microscopic changes carry macroscopic weight. Ignition-scale capsules now compress matter to regimes where the electron de Broglie wavelength rivals the Debye length, making classical kinetic descriptions insufficient. By extending KEEN physics into this quantum domain, our results offer a potential diagnostic of non-equilibrium electron dynamics for next-generation inertial-confinement designs and high-energy-density platforms, indicating that predictive fusion modeling may benefit from the integration of kinetic fidelity with quantum effects.

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Cite This Study

Padilla-Gomez et al. (2026) studied this question.

synapsesocial.com/papers/69d5f00974eaea4b11a79849https://doi.org/10.1063/5.0308425
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