Formation of the binary pulsars J1141-6545 and B2023+46
arXiv:astro-ph/0204511 · doi:10.1046/j.1365-8711.2002.05594.x
Abstract
The binaries PSR J1141-6545 and PSR B2303+46 each appear to contain a white dwarf which formed before the neutron star. We describe an evolutionary pathway to produce these two systems. In this scenario, the primary transfers its envelope onto the secondary which is then the more massive of the two stars, and indeed sufficiently massive later to produce a neutron star via a supernova. The core of the primary produces a massive white dwarf which enters into a common envelope with the core of the secondary when the latter evolves off the main sequence. During the common envelope phase, the white dwarf and the core of the secondary spiral together as the envelope is ejected. The evolutionary history of PSR J1141-6545 and PSR B2303+46 differ after this phase. In the case of PSR J1141--6545, the secondary (now a helium star) evolves into contact transferring its envelope onto the white dwarf. We propose that the vast majority of this material is in fact ejected from the system. The remains of the secondary then explode as a supernova producing a neutron star. Generally the white dwarf and neutron star will remain bound in tight, often eccentric, systems resembling PSR J1141-6545. These systems will spiral in and merge on a relatively short timescale and may make a significant contribution to the population of gamma ray burst progenitors. In PSR B2303+46, the helium-star secondary and white dwarf never come into contact. Rather the helium star loses its envelope via a wind, which increases the binary separation slightly. Only a small fraction of such systems will remain bound when the neutron star is formed (as the systems are wider). Those systems which are broken up will produce a population of high-velocity white dwarfs and neutron stars.
9 pages, 10 figures; MNRAS in press
References in corpus (1)
Cited by in corpus (25)
- High Resolution Calculations of Merging Neutron Stars III: Gamma-Ray Bursts
- Delay-time distribution of core-collapse supernovae with late events resulting from binary interaction
- Nuclear-dominated accretion and subluminous supernovae from the merger of a white dwarf with a neutron star or black hole
- On type Ia supernovae and the formation of single low-mass white dwarfs
- Mass transfer in white dwarf-neutron star binaries
- Double-core evolution and the formation of neutron-star binaries with compact companions
- A new type of long gamma--ray burst
- The demographics of neutron star - white dwarf mergers: rates, delay-time distributions and progenitors
- The progenitors of calcium-rich transients are not formed in situ
- Modelling annual and orbital variations in the scintillation of the relativistic binary PSR J11416545
- Transients from ONe White-Dwarf - Neutron-Star/Black-Hole Mergers
- PSR J17552550: A young radio pulsar with a massive, compact companion
- Recycled pulsars with black hole companions: the high mass analogues of PSR B2303+46
- A white dwarf companion to the relativistic pulsar PSR J1141-6545
- A pre-explosion optical transient event from a white dwarf merger with a giant supernova progenitor
- Neutron star binaries and long duration gamma-ray bursts
- Gamma--ray Burst Models
- Discovering neutron stars with LISA via measurements of orbital eccentricity in Galactic binaries
- Importance of Tides for Periastron Precession in Eccentric Neutron Star - White Dwarf Binaries
- Comparing the Space Densities of Millisecond-Spin Magnetars and Fast X-Ray Transients
- On rare core collapse supernovae inside planetary nebulae
- A deep search for radio pulsations from the 1.3 M compact-object binary companion of young pulsar PSR J1906+0746
- Quark Novae: An Alternative Channel For the Formation of Isolated Millisecond Pulsars
- Accretion induced merger leading to core collapse supernovae in old stellar populations
- Rare events of a peculiar thermonuclear supernova that precedes a core collapse supernova