Spatiotemporal chaos and the dynamics of coupled Langmuir and ion-acoustic waves in plasmas
S. Banerjee, A. P. Misra, P. K. Shukla, and L.Rondoni

TL;DR
This study uses simulations to explore how coupled Langmuir and ion-acoustic waves in plasmas can transition to chaos, revealing mechanisms for turbulence and energy redistribution in plasma wave dynamics.
Contribution
It introduces a low-dimensional Fourier mode model showing how large-scale wave interactions lead to chaos and turbulence in plasma wave systems.
Findings
Ion-wave nonlinearity enhances Langmuir wave electric fields.
Transition to temporal chaos occurs with larger excited mode length scales.
Spatiotemporal chaos causes energy redistribution and Langmuir turbulence.
Abstract
A simulation study is performed to investigate the dynamics of coupled Langmuir waves (LWs) and ion-acoustic waves (IAWs) in an unmagnetized plasma. The effects of dispersion due to charge separation and the density nonlinearity associated with the IAWs, are considered to modify the properties of Langmuir solitons, as well as to model the dynamics of relatively large amplitude wave envelopes. It is found that the Langmuir wave electric field, indeed, increases by the effect of ion-wave nonlinearity (IWN). Use of a low-dimensional model, based on three Fourier modes shows that a transition to temporal chaos is possible, when the length scale of the linearly excited modes is larger than that of the most unstable ones. The chaotic behaviors of the unstable modes are identified by the analysis of Lyapunov exponent spectra. The space-time evolution of the coupled LWs and IAWs shows that the…
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