Braking indices of young radio pulsars: theoretical perspective
arXiv:2008.11737 · doi:10.1093/mnras/staa3070
Abstract
Recently, Parthsarathy et al. analysed long-term timing observations of 85 young radio pulsars. They found that 11 objects have braking indices ranging , far from the classical value . They also noted a mild correlation between measured value of and characteristic age of a radio pulsar. In this article we systematically analyse possible physical origin of large braking indices. We find that a small fraction of these measurements could be caused by gravitational acceleration from an unseen ultra-wide companion of a pulsar or by precession. Remaining braking indices cannot be explained neither by pulsar obliquity angle evolution, nor by complex high-order multipole structure of the poloidal magnetic field. The most plausible explanation is a decay of the poloidal dipole magnetic field which operates on a time scale years in some young objects, but has significantly longer time scale in other radio pulsars. This decay can explain both amplitude of measured and some correlation between and characteristic age. The decay can be caused by either enhanced crystal impurities in the crust of some isolated radio pulsars, or more likely, by enhanced resistivity related to electron scattering off phonons due to slow cooling of low-mass neutron stars. If this effect is indeed the main cause of the rapid magnetic field decay manifesting as large braking indices, we predict that pulsars with large braking indices are hotter in comparison to those with .
Submitted to MNRAS
References in corpus (20)
- The Gaia mission
- A New Electron Density Model for Estimation of Pulsar and FRB Distances
- The strongest cosmic magnets: Soft Gamma-ray Repeaters and Anomalous X-ray Pulsars
- Untwisting magnetospheres of neutron stars
- The observed velocity distribution of young pulsars
- 2D Cooling of Magnetized Neutron Stars
- A NICER view of PSR J0030+0451: evidence for a global-scale multipolar magnetic field
- Magnetic, thermal and rotational evolution of isolated neutron stars
- Magnetic, thermal and rotational evolution of isolated neutron stars
- The population of pulsars with interpulses and the implications for beam evolution
- The observed velocity distribution of young pulsars II: analysis of complete PSR
- Multipolar electromagnetic fields around neutron stars: exact vacuum solutions and related properties
- Magnetic Field Generation in Stars
- Timing of young radio pulsars II. Braking indices and their interpretation
- Post fall-back evolution of multipolar magnetic fields and radio pulsar activation
- Powering Central Compact Objects with a Tangled Crustal Magnetic Field
- Modified pulsar current analysis: probing magnetic field evolution
- How to make a mature accreting magnetar
- The distribution of tilt angles in newly born NSs: role of interior viscosity and magnetic field
- Initial parameters of neutron stars
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- The Galactic population of magnetars : a simulation-based inference study
- "The Goose" Pulsar Wind Nebula of PSR J1016-5857: The Birth of a Plerion
- Pulsar Population Synthesis with Magnetorotational Evolution: Constraining the Decay of Magnetic field
- Inferring neutron star properties through gravitational waves from r-modes and their relativistic counterparts
- Magnetic field decay in young radio pulsars