Precision cosmology and the stiff-amplified gravitational-wave background from inflation: NANOGrav, Advanced LIGO-Virgo and the Hubble tension
arXiv:2107.12229 · doi:10.1088/1475-7516/2021/10/024
Abstract
The recent NANOGrav finding of a common-spectrum process has invited interpretations as possible evidence of a primordial stochastic gravitational-wave background (SGWB) stronger than predicted by standard inflation+LCDM. Such an SGWB would contribute an extra radiation component to the background Universe which may affect its expansion history. As such, it may help alleviate the current Hubble tension, a novel connection between gravitational waves and cosmology. We demonstrate this by considering a cosmological model, the "standard inflation + stiff amplification" scenario, with two components added to the LCDM model: a stiff component (w=1) and the primordial SGWB. Previously, we showed that even for standard inflation, the SGWB may be detectable at the high frequencies probed by laser interferometers, if it is amplified by a possible early stiff era after reheating. Models that boost the SGWB enough to cause significant backreaction, however, must still preserve the well-measured radiation-matter equality, as precision cosmology demands. For that, we calculate the fully-coupled evolution of the SGWB and expansion history, sampling parameter space (tensor-to-scalar ratio, reheating temperature and temperature at stiff-to-radiation equality). We then perform a joint analysis of the NANOGrav results and latest upper bounds from Planck, big bang nucleosynthesis and Advanced LIGO-Virgo, to constrain the model. The resulting blue-tilted, stiff-amplified SGWB is still too small to explain the NANOGrav results. However, if someday, Advanced LIGO-Virgo detects the SGWB, our model can explain it within standard inflation (without requiring an initial blue tilt). Meanwhile, this model may bring current high-z measurements of the Hubble constant within 3.4 sigma of the low-z measurements by SH0ES (from 4.4 sigma) and within 2.6 sigma of those by H0LiCOW (from 3.1 sigma), reducing the tension.
31 pages, 11 figures. Published in JCAP. (This version) Updated to match the published version
References in corpus (13)
- Advanced Virgo: a 2nd generation interferometric gravitational wave detector
- Advanced LIGO
- Large Magellanic Cloud Cepheid Standards Provide a 1% Foundation for the Determination of the Hubble Constant and Stronger Evidence for Physics Beyond LambdaCDM
- Laser Interferometer Space Antenna
- The trouble with
- The effects of He I 10830 on helium abundance determinations
- Relating gravitational wave constraints from primordial nucleosynthesis, pulsar timing, laser interferometers, and the CMB: implications for the early universe
- Massive black hole binary systems and the NANOGrav 12.5 year results
- Blue-tilted inflationary tensor spectrum and reheating in the light of NANOGrav results
- Inflationary Cosmology Connecting Dark Energy and Dark Matter
- Multi-wavelength constraints on the inflationary consistency relation
- The QCD Axion and Gravitational Waves in light of NANOGrav results
- Cosmic backgrounds of relic gravitons and their absolute normalization
Cited by in corpus (5)
- Seven hints that early-time new physics alone is not sufficient to solve the Hubble tension
- On the evolution of the Hubble constant with the SNe Ia Pantheon Sample and Baryon Acoustic Oscillations: a feasibility study for GRB-cosmology in 2030
- Probing Physics Beyond the Standard Model: Limits from BBN and the CMB Independently and Combined
- Relic gravitons and high-frequency detectors
- Relic gravitons at intermediate frequencies and the expansion history of the Universe