Anisotropy of phase transition gravitational wave and its implication for primordial seeds of the Universe
arXiv:2112.01409 · doi:10.1103/PhysRevD.105.083527
Abstract
We quantitatively study how the primordial density fluctuations are imprinted on the anisotropy of the phase transition gravitational wave (PTGW). Generated long before recombination and free from Silk damping, the anisotropic PTGW might reveal the density perturbation seeded from inflation or alternatives. We find new behaviors of the PTGW anisotropy power spectrum. The PTGW anisotropy is stronger than the anisotropy of the cosmic microwave background temperature at all scales, and the high- multiples are enhanced about 1 order due to the early integrated Sachs-Wolfe effect. Furthermore, differences in primordial power spectra at small scales manifest themselves more significantly on the angular power spectrum of PTGW anisotropy compared to that of the cosmic microwave background. These properties might provide a novel clue to understanding the primordial density perturbation of our early Universe and thereby complete our understanding of inflation theory. Taking nanohertz PTGW from dark matter models as a typical example, we obtain amplitudes of PTGW anisotropy which are about 4 or 3 orders weaker than the isotropic PTGW energy spectra.
Published version in Physical Review D, 7 pages, 3 figures
References in corpus (7)
- The Five-Hundred-Meter Aperture Spherical Radio Telescope (FAST) Project
- Primordial Black Holes as Dark Matter: Recent Developments
- Gravitational Wave Production by Collisions: More Bubbles
- The TianQin project: current progress on science and technology
- Gravitational wave energy budget in strongly supercooled phase transitions
- Common-red-signal analysis with 24-yr high-precision timing of the European Pulsar Timing Array: Inferences in the stochastic gravitational-wave background search
- Mapping gravitational-wave backgrounds using methods from CMB analysis: Application to pulsar timing arrays