Modulational instability of quantum electron-acoustic waves and associated envelope solitons in a degenerate quantum plasma
Foisal B. T. Siddiki, A. A. Mamun, M. R. Amin

TL;DR
This paper investigates the linear and nonlinear behavior of quantum electron-acoustic waves in a degenerate quantum plasma, deriving a nonlinear Schrödinger equation to analyze envelope solitons and modulational instability.
Contribution
It introduces a theoretical analysis of QEA waves in degenerate quantum plasma, deriving the NLS equation and exploring the effects of degeneracy, superthermality, and quantum potentials on wave stability and soliton formation.
Findings
QEA waves are modulationally unstable for wave numbers below a critical value.
Bright envelope solitons form in the unstable regime, localized in space and time.
Increasing the spectral index reduces the critical wave number and soliton amplitude.
Abstract
The basic features of linear and nonlinear quantum electron-acoustic (QEA) waves in a degenerate quantum plasma (containing non-relativistically degenerate electrons, superthermal or -distributed electrons, and stationary ions) are theoretically investigated. The nonlinear Sch\"{o}dinger (NLS) equation is derived by employing thereductive perturbation method. The stationary solitonic solution of the NLS equation are obtained, and examined analytically as well as numerically to identify the basic features of the QEA envelope solitons. It has been found that the effects of the degeneracy and exchange/Bohm potentials of cold electrons, and superthermality of hot electrons significantly modify the basic properties of linear and nonlinear QEA waves. It is observed that the QEA waves are modulationally unstable for , where is the maximum (critical) value of the QEA wave…
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Taxonomy
TopicsDust and Plasma Wave Phenomena · Laser-induced spectroscopy and plasma · Cold Atom Physics and Bose-Einstein Condensates
