{"title":"Transverse instability of electron-acoustic solitons in a relativistic degenerate astrophysical magnetoplasma","authors":"A. P. Misra, A. Abdikian","doi":"arxiv-2408.04404","DOIUrl":null,"url":null,"abstract":"We study the nonlinear theory of small-amplitude electron-acoustic solitons\n(EASs) in a relativistic astrophysical magnetoplasma consisting of\ntwo-temperature electrons: a sparse population of relativistic nondegenerate\nclassical electrons and a group of fully degenerate dense relativistic\nelectrons (main constituent) immersed in a static magnetic field with a\nneutralizing stationary ion background. By using the multiple-scale reductive\nperturbation technique with the Lorentz transformation, the Zakharov-Kuznetsov\n(ZK) and the modified Zakharov-Kuznetsov (mZK) equations are derived to\ndescribe the evolution of EASs in two different regimes of relativistic\ndegeneracy: $r_{d0}<50$ and $r_{d0}\\gtrsim50$. The characteristics of the plane\nsoliton solutions of ZK and mZK equations and the soliton energy are studied.\nWe show that the solitons moving at an angle $\\alpha$ to the external magnetic\nfield can be unstable under transverse long-wavelength perturbations. The\ngrowth rates of instabilities are obtained and analyzed with the effects of the\nrelativity parameter $\\beta_{\\rm{cl}}=k_BT_{\\rm{cl}}/m_ec^2$ and the degeneracy\nparameter $r_{d0}$, where $k_B$ is the Boltzmann constant and $T_{\\rm{cl}}$ is\nthe temperature of classical electrons. Interestingly, the ZK solitons, even if\nit is stable for the first-order perturbations, can be unstable in the\nsecond-order correction. Furthermore, while the first-order growth rates of\nperturbations for ZK solitons tend to vanish as $\\alpha\\rightarrow 38^\\circ$,\nthat for the mZK soliton goes to zero as $\\alpha\\rightarrow 90^\\circ$. However,\ndepending on the angle $\\alpha$, the growth rates are found to be reduced\neither by increasing the values of $\\beta_{\\rm{cl}}$ or by decreasing the\nvalues of $r_{d0}$. The applications of our results to astrophysical plasmas,\nsuch as those in the environments of white dwarfs are discussed.","PeriodicalId":501274,"journal":{"name":"arXiv - PHYS - Plasma Physics","volume":"1 1","pages":""},"PeriodicalIF":0.0000,"publicationDate":"2024-08-08","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"arXiv - PHYS - Plasma Physics","FirstCategoryId":"1085","ListUrlMain":"https://doi.org/arxiv-2408.04404","RegionNum":0,"RegionCategory":null,"ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"","JCRName":"","Score":null,"Total":0}
引用次数: 0
Abstract
We study the nonlinear theory of small-amplitude electron-acoustic solitons
(EASs) in a relativistic astrophysical magnetoplasma consisting of
two-temperature electrons: a sparse population of relativistic nondegenerate
classical electrons and a group of fully degenerate dense relativistic
electrons (main constituent) immersed in a static magnetic field with a
neutralizing stationary ion background. By using the multiple-scale reductive
perturbation technique with the Lorentz transformation, the Zakharov-Kuznetsov
(ZK) and the modified Zakharov-Kuznetsov (mZK) equations are derived to
describe the evolution of EASs in two different regimes of relativistic
degeneracy: $r_{d0}<50$ and $r_{d0}\gtrsim50$. The characteristics of the plane
soliton solutions of ZK and mZK equations and the soliton energy are studied.
We show that the solitons moving at an angle $\alpha$ to the external magnetic
field can be unstable under transverse long-wavelength perturbations. The
growth rates of instabilities are obtained and analyzed with the effects of the
relativity parameter $\beta_{\rm{cl}}=k_BT_{\rm{cl}}/m_ec^2$ and the degeneracy
parameter $r_{d0}$, where $k_B$ is the Boltzmann constant and $T_{\rm{cl}}$ is
the temperature of classical electrons. Interestingly, the ZK solitons, even if
it is stable for the first-order perturbations, can be unstable in the
second-order correction. Furthermore, while the first-order growth rates of
perturbations for ZK solitons tend to vanish as $\alpha\rightarrow 38^\circ$,
that for the mZK soliton goes to zero as $\alpha\rightarrow 90^\circ$. However,
depending on the angle $\alpha$, the growth rates are found to be reduced
either by increasing the values of $\beta_{\rm{cl}}$ or by decreasing the
values of $r_{d0}$. The applications of our results to astrophysical plasmas,
such as those in the environments of white dwarfs are discussed.