arXiv · 2110.03096
Constraining cosmological phase transitions with the Parkes Pulsar Timing Array
Abstract
A cosmological first-order phase transition is expected to produce a stochastic gravitational wave background. If the phase transition temperature is on the MeV scale, the power spectrum of the induced stochastic gravitational waves peaks around nanohertz frequencies, and can thus be probed with high-precision pulsar timing observations. We search for such a stochastic gravitational wave background with the latest data set of the Parkes Pulsar Timing Array. We find no evidence for a Hellings-Downs spatial correlation as expected for a stochastic gravitational wave background. Therefore, we present constraints on first-order phase transition model parameters. Our analysis shows that pulsar timing is particularly sensitive to the low-temperature ($T \sim 1 - 100$ MeV) phase transition with a duration $(\beta/H_*)^{-1}\sim 10^{-2}-10^{-1}$ and therefore can be used to constrain the dark and QCD phase transitions.
Explore related subjects
Keep this discovery
Xiao Xue, Ligong Bian, Jing Shu, Qiang Yuan, Xingjiang Zhu, N. D. Ramesh Bhat, Shi Dai, Yi Feng, Boris Goncharov, George Hobbs, Eric Howard, Richard N. Manchester, Christopher J. Russell, Daniel J. Reardon, Ryan M. Shannon, Renée Spiewak, Nithyanandan Thyagarajan, Jingbo Wang. 2021-10-06. Constraining cosmological phase transitions with the Parkes Pulsar Timing Array. https://doi.org/10.1103/physrevlett.127.251303
Cite the original work for its findings. Save a collection to share your selection of sources.