Enhanced cooling of neutron stars via Cooper-pairing neutrino emission
arXiv:astro-ph/0404002 · doi:10.1051/0004-6361:20041006
Abstract
We simulate cooling of superfluid neutron stars with nucleon cores where direct Urca process is forbidden. We adopt density dependent critical temperatures and of singlet-state proton and triplet-state neutron pairing in a stellar core and consider a strong proton pairing (with maximum $T_{cp}^{max} \ga 5 \times 10^9$ K) and a moderate neutron pairing ( K). When the internal stellar temperature falls below , the neutrino luminosity due to Cooper pairing of neutrons behaves , just as that produced by modified Urca process (in a non-superfluid star) but is higher by about two orders of magnitude. In this case the Cooper-pairing neutrino emission acts like an enhanced cooling agent. By tuning the density dependence we can explain observations of cooling isolated neutron stars in the scenario in which direct Urca process or similar process in kaon/pion condensed or quark matter are absent.
9 pages, 3 figures, submitted to A&A