Long-period Pulsars as Possible Outcomes of Supernova Fallback Accretion
arXiv:2201.11704 · doi:10.3847/1538-4357/ac7cec
Abstract
For about half a century the radio pulsar population was observed to spin in the ~0.002-12s range, with different pulsar classes having a spin-period evolution that differs substantially depending on their magnetic fields or past accretion history. The recent detection of several slowly rotating pulsars has re-opened the long-standing question of the exact physics, and observational biases, driving the upper bound of the period range of the pulsar population. In this work, we perform a parameter study of the spin-period evolution of pulsars interacting with supernova fallback matter and specifically look at the fallback accretion disk scenario. Depending on the initial conditions at formation, this evolution can differ substantially from the typical dipolar spin-down, resulting in pulsars that show spin periods longer than their coeval peers. By using general assumptions for the pulsar spin period and magnetic field at birth, initial fallback accretion rates and including magnetic field decay, we find that very long spin periods (>100s) can be reached in the presence of strong, magnetar-like magnetic fields (>10^{14}G) and moderate initial fallback accretion rates (~10^{22-27} g s^{-1}). In addition, we study the cases of two recently discovered periodic radio sources, the pulsar PSR J0901-4046 (P = 75.9 s) and the radio transient GLEAM-X\,J162759.5-523504.3 (P = 1091 s), in light of our model. We conclude that the supernova fallback scenario could represent a viable channel to produce a population of long-period isolated pulsars that only recent observation campaigns are starting to unveil.
13 pages, 6 figures; ApJ in press
References in corpus (27)
- A New Electron Density Model for Estimation of Pulsar and FRB Distances
- An Ultraluminous X-ray Source Powered by An Accreting Neutron Star
- Super-critically accreting stellar-mass black holes as ultraluminous X-ray sources
- A Debris Disk Around An Isolated Young Neutron Star
- The FAST Galactic Plane Pulsar Snapshot survey: I. Project design and pulsar discoveries
- Magnetic field dissipation in neutron star crusts: from magnetars to isolated neutron stars
- 2D Cooling of Magnetized Neutron Stars
- Accretion funnels onto weakly magnetized young stars
- Discovery of a radio emitting neutron star with an ultra-long spin period of 76 seconds
- A radio transient with unusually slow periodic emission
- Formation Rates and Evolution Histories of Magnetars
- Magnetic, thermal and rotational evolution of isolated neutron stars
- Population synthesis of isolated Neutron Stars with magneto--rotational evolution
- Magnetar-like activity from the central compact object in the SNR RCW103
- Magnetic, thermal and rotational evolution of isolated neutron stars
- Polar-cap accelerator and radio emission from pulsars
- Magnetic field growth in young glitching pulsars with a braking index
- A very young radio-loud magnetar
- The Nature of the Compact X-ray Source in Supernova Remnant RCW 103
- Rotational evolution of magnetars in the presence of a fallback disk
- On the magnetic field evolution timescale in superconducting neutron star cores
- Ejector and propeller spin-down: How might a superluminous supernova millisecond magnetar become the 6.67 hr pulsar in RCW103
- Hall cascade with fractional magnetic helicity in neutron star crusts
- The evolution of a newborn millisecond magnetar with a propeller-recycling disk
- On the fallback disk around the slowest isolated pulsar, 1E 1613485055
- Statistical tests of young radio pulsars with/without supernova remnants: implying two origins of neutron stars
- Do the periodic activities of repeating fast radio bursts represent the spins of neutron stars?
Cited by in corpus (13)
- A new scenario for magnetar formation: Tayler-Spruit dynamo in a proto-neutron star spun up by fallback
- Constraining the nature of the 18-min periodic radio transient GLEAM-X J162759.5-523504.3 via multi-wavelength observations and magneto-thermal simulations
- Evolutionary implications of a magnetar interpretation for GLEAM-X J162759.5-523504.3
- Discussions on the nature of GLEAM-X J162759.5-523504.3
- Tayler-Spruit dynamo in stably stratified rotating fluids: Application to proto-magnetars
- Evolution of the long-period pulsar PSR J0901-4046
- Detectability of Late-time Supernova Neutrinos with Fallback Accretion onto Protoneutron star
- Searching for continuous gravitational waves from slowly spinning neutron stars with DECIGO, Big Bang Observer, Einstein Telescope and Cosmic Explorer
- The Enigma of GLEAM-X~J162759.5-523504.3
- Prospects for Time-Domain and Multi-Messenger Science with eXTP
- On Ultra-long Period (53.8 min) Pulsar ASKAP J1935+2148: Coherent Radio Emission Triggered by Local Superstrong Magnetic Reconnection
- The X-ray emission of the long-period transient and accreting cataclysmic variable ASKAP J174508.9-505149
- A Falsifiable Timing Test for the Double-White-Dwarf Model of Long-Period Transients