Spin-induced localized density excitations in quantum plasmas
arXiv:1108.4218 · doi:10.1109/TPS.2011.2166279
Abstract
In this paper the dominant effect of electron inertia on the dynamics of localized density excitations is studied in a quantum plasma in the presence of electron spin effects. Using the quantum magnetohydrodynamics (QMHD) model including electron tunneling and spin polarization phenomena, it is revealed that the quantum effects such as plasma paramagnetism and diamagnetism play inevitable role on soliton existence criteria in quantum plasmas. Furthermore, it is shown that the magnetosonic localized density-excitation stability depends strongly on the quantum system dimensionality. Two distinct region of soliton stability is shown to exist depending on the value of the electron effective mass, where, the soliton amplitude variation with respect to the external magnetic field strength is quite opposite in these regions. Current findings can be important in the study of dynamical nonlinear wave features in dense laboratory or inertial-confined plasmas.
Paper accepted in journal IEEE Trans. Plasma Sci
References in corpus (11)
- Nonlinear collective effects in photon-photon and photon-plasma interactions
- Dynamics of spin 1/2 quantum plasmas
- Spin magnetohydrodynamics
- Quantum plasma effects in the classical regime
- New Quantum Limits in Plasmonic Devices
- Magnetosonic solitons in a Fermionic quantum plasma
- Nonlinear structures: explosive, soliton and shock in a quantum electron-positron-ion magnetoplasma
- Nonlinear ion waves in Fermi-Dirac pair plasmas
- Remarkable paramagnetic features of Fermi-Dirac plasmas
- Propagation of arbitrary amplitude nonlinear quantum ion-acoustic waves in electron-ion plasmas: Dimensionality effects
- Double-wells and double-layers in dusty Fermi-Dirac plasmas: Comparison with the semiclassical Thomas-Fermi counterpart