Neutrino Processes in Strong Magnetic Fields and Implications for Supernova Dynamics
arXiv:astro-ph/0401634 · doi:10.1103/PhysRevD.69.123004
Abstract
The processes of neutrino (antineutrino) absorption and electron (positron) capture on nucleons provide the dominant mechanisms for heating and cooling the material between the protoneutron star and the stalled shock in a core-collapse supernova. Observations suggest that some neutron stars are born with magnetic fields of at least 10^15 G while theoretical considerations give an upper limit of 10^18 G for the protoneutron star magnetic fields. We calculate the rates for the above neutrino processes in strong magnetic fields of 10^16 G. We find that the main effect of such magnetic fields is to change the equations of state through the phase space of electron and positron, which differs from the classical case due to quantization of the motion of electron and positron perpendicular to the magnetic field. As a result, the cooling rate can be greatly reduced by magnetic fields of 10^16 G for typical conditions below the stalled shock and a nonuniform protoneutron star magnetic field (e.g., a dipole field) can introduce a large angular dependence of the cooling rate. In addition, strong magnetic fields always lead to an angle-dependent heating rate by polarizing the spin of nucleons. The implications of our results for the neutrino-driven supernova mechanism are discussed.
20 pages, 12 figures. Some explanations are added in Version 2 in response to referee's criticism. A few references are added accordingly
References in corpus (3)
Cited by in corpus (23)
- The Proto-Magnetar Model for Gamma-Ray Bursts
- Three-dimensional GRMHD simulations of neutrino-cooled accretion disks from neutron star mergers
- Proto-Neutron Star Winds with Magnetic Fields and Rotation
- On the Conditions for Neutron-Rich Gamma-Ray Burst Outflows
- Hyperaccreting Disks around Magnetars for Gamma-Ray Bursts: Effects of Strong Magnetic Fields
- Millicharged neutrino with anomalous magnetic moment in rotating magnetized matter
- Neutrino-heated winds from millisecond proto-magnetars as sources of the weak r-process
- High-entropy ejections from magnetized proto-neutron star winds: implications for heavy element nucleosynthesis
- Neutrino-heated winds from rotating proto-magnetars
- North-South Neutrino Heating Asymmetry in Strongly Magnetized and Rotating Stellar Cores
- The Non-Monotonic Dependence of Supernova and Remnant Formation on Progenitor Rotation
- Rates of Neutrino Absorption on Nucleons and the Reverse Processes in Strong Magnetic Fields
- Quasithermal Neutrinos from Rotating Protoneutron Stars Born during Core Collapse of Massive Stars
- Neutrino electromagnetic interactions: a window to new physics
- On the synthesis of heavy nuclei in protomagnetar outflows and implications for ultra-high energy cosmic rays
- Three-Dimensional General-Relativistic Simulations of Neutrino-Driven Winds from Rotating Proto-Neutron Stars
- A supersymmetric model for triggering Supernova Ia in isolated white dwarfs
- Electron to selectron pair conversion in a SUSY bubble
- Influence of magnetic field on beta-processes in supernova matter
- Neutrino propagation in an electron background with an inhomogeneous magnetic field
- Effects of Landau quantization on neutrino emission and absorption
- Neutrino dispersion relation in a magnetized multi-stream matter background
- Neutrino opacities in magnetic fields for binary neutron star merger simulations