English

Collective Modes in Neutrino `Beam' Electron-Positron Plasma Interactions

Astrophysics 2009-10-31 v2 High Energy Physics - Phenomenology

Abstract

We derive semiclassical neutrino-electron transport equations in the collisionless (Vlasov) limit from the coupled Dirac equations, incorporating the charged and neutral weak current-current as well as electromagnetic interactions. A corresponding linear response theory is derived. In particular, we calculate the response functions for a variety of beam-plasma geometries, which are of interest in a supernova scenario. We apply this to the study of plasmons and to a new class of collective {\it pharon} resonance modes, which are characterized by ω<q\omega < q. We find that the growth rates of the unstable modes correspond to a strongly temperature (Tν2Te3\propto T_\nu^2T_e^3) and linearly momentum dependent e-folding length of about 101010^{10} km under typical conditions for Type II supernovae. This appears to rule out such long-wavelength collective modes as an efficient means of depositing neutrino energy into the plasma sphere.

Keywords

Cite

@article{arxiv.astro-ph/0007024,
  title  = {Collective Modes in Neutrino `Beam' Electron-Positron Plasma Interactions},
  author = {H. -Th. Elze and T. Kodama and R. Opher},
  journal= {arXiv preprint arXiv:astro-ph/0007024},
  year   = {2009}
}

Comments

27 pages; LaTex. Replaced by published version. - Appendix about neutrino Wigner functions added and main text correspondingly revised. Conclusions unchanged