Is there a spectral turnover in the spin noise of millisecond pulsars?
arXiv:1910.05961 · doi:10.1093/mnras/staa2081
Abstract
Pulsar timing arrays provide a unique means to detect nanohertz gravitational waves through long-term measurements of pulse arrival times from an ensemble of millisecond pulsars. After years of observations, some timing array pulsars have been shown to be dominated by low-frequency red noise, including spin noise that might be associated with pulsar rotational irregularities. The power spectral density of pulsar timing red noise is usually modeled with a power law or a power law with a turnover frequency below which the noise power spectrum plateaus. If there is a turnover in the spin noise of millisecond pulsars, residing within the observation band of current and/or future pulsar timing measurements, it may be easier than projected to resolve the gravitational-wave background from supermassive binary black holes. Additionally, the spectral turnover can provide valuable insights on neutron star physics. In the recent study by Melatos and Link, the authors provided a derivation of the model for power spectral density of spin noise from superfluid turbulence in the core of a neutron star, from first principles. The model features a spectral turnover, which depends on the dynamical response time of the superfluid and the steady-state angular velocity lag between the crust and the core of the star. In this work, we search for a spectral turnover in spin noise using the first data release of the International Pulsar Timing Array. Through Bayesian model selection, we find no evidence of a spectral turnover. Our analysis also shows that data from pulsars J1939+2134, J10240719 and J1713+0747 prefers the power-law model to the superfluid turbulence model.
10 pages, 4 figures
References in corpus (22)
- The ATNF Pulsar Catalogue
- Astrophysics Source Code Library
- TEMPO2, a new pulsar timing package. I: Overview
- Bilby: A user-friendly Bayesian inference library for gravitational-wave astronomy
- The NANOGrav 11-year Data Set: High-precision timing of 45 Millisecond Pulsars
- Switched magnetospheric regulation of pulsar spin-down
- The NANOGrav 11-year Data Set: Pulsar-timing Constraints On The Stochastic Gravitational-wave Background
- The International Pulsar Timing Array: Second data release
- Assessing the Role of Spin Noise in the Precision Timing of Millisecond Pulsars
- Expected properties of the first gravitational wave signal detected with pulsar timing arrays
- On measuring the gravitational-wave background using Pulsar Timing Arrays
- Avalanche dynamics of radio pulsar glitches
- Limitations in timing precision due to single-pulse shape variability in millisecond pulsars
- New advances in the Gaussian-process approach to pulsar-timing data analysis
- Parkes Pulsar Timing Array constraints on ultralight scalar-field dark matter
- Timing of young radio pulsars I: Timing noise, periodic modulation and proper motion
- Studying the solar system with the International Pulsar Timing Array
- On combining information from multiple gravitational wave sources
- The NANOGrav 11-Year Data Set: Evolution of Gravitational Wave Background Statistics
- The NANOGrav 11-year Data Set: Solar Wind Sounding Through Pulsar Timing
- Studying the Solar system dynamics using pulsar timing arrays and the LINIMOSS dynamical model
- Pulsar timing noise and the minimum observation time to detect gravitational waves with pulsar timing arrays
Cited by in corpus (17)
- Bayesian inference for compact binary coalescences with BILBY: Validation and application to the first LIGO--Virgo gravitational-wave transient catalogue
- On the evidence for a common-spectrum process in the search for the nanohertz gravitational-wave background with the Parkes Pulsar Timing Array
- The NANOGrav 15-Year Data Set: Detector Characterization and Noise Budget
- Identifying and mitigating noise sources in precision pulsar timing data sets
- The second data release from the European Pulsar Timing Array II. Customised pulsar noise models for spatially correlated gravitational waves
- Noise analysis in the European Pulsar Timing Array data release 2 and its implications on the gravitational-wave background search
- Consistency of the Parkes Pulsar Timing Array Signal with a Nanohertz Gravitational-wave Background
- Pulsar glitch detection with a hidden Markov model
- Parameter estimation of a two-component neutron star model with spin wandering
- Rapid parameter estimation of a two-component neutron star model with spin wandering using a Kalman filter
- On Detecting Nearby Nano-Hertz Gravitational Wave Sources via Pulsar Timing Arrays
- Pulse Frequency Fluctuations of Persistent Accretion Powered Pulsars
- Choosing suitable noise models for nanohertz gravitational-wave astrophysics
- Bayesian pulsar timing and noise analysis with Vela.jl: an overview
- Detectability of dark matter density distribution via gravitational waves from binary black holes in the Galactic center
- How much spin wandering can continuous gravitational wave search algorithms handle?
- Shapiro Delay Measurements from Fifteen Years of PSR J12311411 Radio Observations