The Indian Pulsar Timing Array Data Release 2: III. Search for a Stochastic Gravitational Wave Background
Hemanga Tahbildar, Kunjal Vara, Mayuresh Surnis, Churchil Dwivedi, Bhal Chandra Joshi, Sharika Dhakappa, Aman Srivastava, Shantanu Desai, Abhimanyu Susobhanan, Adya Shukla, Himanshu Grover, P. Arumugam, Manjari Bagchi, Neelam Dhanda Batra, Manoneeta Chakraborty, Shaswata Chowdhury, Debabrata Deb, A. Gopakumar, Sushovan Mondal, Kuldeep Meena, K Nobleson, Avinash Kumar Paladi, Arul Pandian B, Kaustubh Rai, Prerna Rana, Shubhit Sardana, Vidit Singh, Jaikhomba Singha, Keitaro Takahashi, Pratik Tarafdar, Zenia Zuraiq
astro-ph.HE
Submitted: 2026-08-03
License: http://creativecommons.org/licenses/by/4.0/
The gist: We present the first independent search for an isotropic stochastic gravitational wave background in the second data release of the Indian Pulsar Timing Array, comprising of 27 millisecond pulsars
Terminology
Abstract
We present the first independent search for an isotropic stochastic gravitational wave background in the second data release of the Indian Pulsar Timing Array, comprising of 27 millisecond pulsars monitored simultaneously in two frequency bands with the upgraded Giant Metrewave Radio Telescope over a maximum 7.2 year baseline. Building on a comprehensive single pulsar noise analysis, we search for a common uncorrelated red noise process within a Bayesian inference framework and with the noise-marginalized optimal statistics, and we test the robustness of the result through per-pulsar dropout analyses and solar-wind exclusion cuts. Leaving the spectral index free, we recover a broad amplitude posterior, 10 A CURN = -13.71+1.06-3.28, with an unconstrained spectral index gamma CURN = 2.98+3.62-2.70 and a Savage-Dickey Bayes factor of 2.5 for a common red process over the no signal model. The optimal-statistic signal to noise ratios for the monopole, dipole, and Hellings-Downs correlations are all consistent with zero. Fixing the spectral index to gamma = 13/3, the value predicted by an idealized toy model in which the background is sourced by a population of supermassive black hole binaries in circular orbits evolving purely under leading-order gravitational radiation reaction, we place a 95% upper limit on the common-process amplitude of A GWB < 3.4 times10-14, stable across solar elongation cuts of 10, 20, and 30. This limit lies approximately an order of magnitude above the amplitudes reported by other, longer-running pulsar timing array experiments. We also demonstrate through simulated datasets with the addition of simple chromatic and achromatic noise components that it will take at least a 10 year baseline to start recovering the common red noise signal.
Sources
- Observation of Gravitational Waves from a Binary Black Hole Merger
- Advanced LIGO
- Laser Interferometer Space Antenna
- The second data release from the European Pulsar Timing Array III. Search for gravitational wave signals
- The NANOGrav 15-year Data Set: Evidence for a Gravitational-Wave Background
- Search for an isotropic gravitational-wave background with the Parkes Pulsar Timing Array
- Searching for the nano-Hertz stochastic gravitational wave background with the Chinese Pulsar Timing Array Data Release I
- A pulsar-based timescale from the International Pulsar Timing Array
- The NANOGrav 15-Year Data Set: Detector Characterization and Noise Budget
- Tempo2, a new pulsar timing package. II: The timing model and precision estimates
- European Pulsar Timing Array Limits On An Isotropic Stochastic Gravitational-Wave Background
- A Practical Theorem on Gravitational Wave Backgrounds
- Are we there yet? Time to detection of nanohertz gravitational waves based on pulsar-timing array limits
- Searching for cosmic string induced stochastic gravitational wave background with the Parkes Pulsar Timing Array
- Primordial gravitational waves in the nano-Hertz regime and PTA data -- towards solving the GW inverse problem
- The Astrophysics of Nanohertz Gravitational Waves
- Weaving the (AdS) spaces with partial entanglement entropy threads
- Upper bounds on the low-frequency stochastic gravitational wave background from pulsar timing observations: current limits and future prospects
- Mapping gravitational-wave backgrounds in modified theories of gravity using pulsar timing arrays
- Characterising gravitational wave stochastic background anisotropy with Pulsar Timing Arrays
Related papers
- Numerical Studies of Accretion Flows onto a Neutron Star Engulfed in a Massive Star
- Collisionless Accretion of Finite-Angular-Momentum Plasma onto a Spinning Black Hole
- Impact of Magnetic Field Topology on Electromagnetic and Gravitational Waves from Binary Neutron Star Merger Remnants
- XRISM Resolve Spectroscopy of GX 5-1: Constraints on Iron Spectral Features in a Luminous Neutron-Star Binary
- SN 1006: A Cosmic Laboratory for Investigating Shock Acceleration Physics
- Neutrino Spectral Pinching in 3D Core-Collapse Supernovae: Late-Time Convergence, Failed-Explosion Signatures, and Viewing-Angle Dispersion