Detecting Relic Gravitational Waves by Pulsar Timing Arrays: Effects of Cosmic Phase Transitions and Relativistic Free-Streaming Gases
Xiao-Jin Liu, Wen Zhao, Yang Zhang, Zong-Hong Zhu

TL;DR
This paper studies how cosmic phase transitions and relativistic gases affect relic gravitational waves detectable by pulsar timing arrays, revealing significant damping effects and implications for early Universe models.
Contribution
It introduces the effects of cosmic phase transitions and free-streaming gases on relic gravitational waves in pulsar timing array observations, an aspect previously neglected.
Findings
Phase transitions significantly damp RGWs in pulsar timing sensitive frequencies.
Upper limits on tensor-to-scalar ratio r increase by about 2 times due to phase transitions.
Effects of free-streaming neutrinos and dark fluids are too small to detect.
Abstract
Relic gravitational waves (RGWs) generated in the early Universe form a stochastic GW background, which can be directly probed by measuring the timing residuals of millisecond pulsars. In this paper, we investigate the constraints on the RGWs and on the inflationary parameters by the observations of current and potential future pulsar timing arrays. In particular, we focus on effects of various cosmic phase transitions (e.g. annihilation, QCD transition and SUSY breaking) and relativistic free-streaming gases (neutrinos and dark fluids) in the general scenario of the early Universe, which have been neglected in the previous works. We find that the phase transitions can significantly damp the RGWs in the sensitive frequency range of pulsar timing arrays, and the upper limits of tensor-to-scalar ratio increase by a factor for both current and future observations.…
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