Internal heating and thermal emission from old neutron stars: Constraints on dense-matter and gravitational physics
arXiv:astro-ph/0610955 · doi:10.1007/s10509-007-9331-0
Abstract
The equilibrium composition of neutron star matter is achieved through weak interactions (direct and inverse beta decays), which proceed on relatively long time scales. If the density of a matter element is perturbed, it will relax to the new chemical equilibrium through non-equilibrium reactions, which produce entropy that is partly released through neutrino emission, while a similar fraction heats the matter and is eventually radiated as thermal photons. We examined two possible mechanisms causing such density perturbations: 1) the reduction in centrifugal force caused by spin-down (particularly in millisecond pulsars), leading to "rotochemical heating", and 2) a hypothetical time-variation of the gravitational constant, as predicted by some theories of gravity and current cosmological models, leading to "gravitochemical heating". If only slow weak interactions are allowed in the neutron star (modified Urca reactions, with or without Cooper pairing), rotochemical heating can account for the observed ultraviolet emission from the closest millisecond pulsar, PSR J0437-4715, which also provides a constraint on |dG/dt| of the same order as the best available in the literature.
6 pages, 7 figures. To appear in the proceedings of "Isolated Neutron Stars: from the Interior to the Surface", a conference held in London in April 2006 (special issue of Astrophysics and Space Science, edited by Dany Page, Roberto Turolla, & Silvia Zane)
References in corpus (4)
- Constraining a possible time-variation of the gravitational constant through "gravitochemical heating" of neutron stars
- Cooling of Neutron Stars with Strong Toroidal Magnetic Fields
- Rotochemical Heating of Neutron Stars: Rigorous Formalism with Electrostatic Potential Perturbations
- Non-Equilibrium Beta Processes in Neutron Stars: A Relationship between the Net Reaction Rate and the Total Emissivity of Neutrinos
Cited by in corpus (3)
- Constraining a possible time-variation of the gravitational constant through "gravitochemical heating" of neutron stars
- Constraining a possible time variation of the gravitational constant G with terrestrial nuclear laboratory data
- 3D code for MAgneto-Thermal evolution in Isolated Neutron Stars, MATINS: thermal evolution and lightcurves