Have Pulsar Timing Arrays detected the Hot Big Bang? Gravitational Waves from Strong First Order Phase Transitions in the Early Universe
arXiv:2208.03330 · doi:10.1103/PhysRevD.106.103523
Abstract
The origins of matter and radiation in the universe lie in a Hot Big Bang. We present a number of well-motivated cosmologies in which the Big Bang occurs through a strong first order phase transition -- either at the end of inflation, after a period of kination ("Kination-Induced Big Bang"), or after a second period of vacuum-domination in the early universe ("Supercooled Big Bang"); we also propose a "Dark Big Bang" where only the dark matter in the Universe is created in a first-order phase transition much after inflation. In all of these scenarios, the resulting gravitational radiation can explain the tentative signals reported by the NANOGrav, Parkes and European Pulsar Timing Array experiments if the reheating temperature of the Hot Big Bang, and correspondingly the energy scale of the false vacuum, falls in the range = MeV--100 GeV. All the same models at higher reheating temperatures will be of interest to upcoming ground- and space-based interferometer searches for gravitational waves at larger frequency.
41 pages, 11 figures
References in corpus (39)
- Advanced Virgo: a 2nd generation interferometric gravitational wave detector
- Cosmology and the Fate of Dilatation Symmetry
- The NANOGrav 12.5-year Data Set: Search For An Isotropic Stochastic Gravitational-Wave Background
- Detecting gravitational waves from cosmological phase transitions with LISA: an update
- Gravitational Wave Production by Collisions: More Bubbles
- The stochastic gravitational-wave background from massive black hole binary systems: implications for observations with Pulsar Timing Arrays
- The International Pulsar Timing Array second data release: Search for an isotropic Gravitational Wave Background
- On the evidence for a common-spectrum process in the search for the nanohertz gravitational-wave background with the Parkes Pulsar Timing Array
- Gravitational wave stochastic background from cosmic (super)strings
- NANOGrav Hints to Primordial Black Holes as Dark Matter
- New Sensitivity Curves for Gravitational-Wave Signals from Cosmological Phase Transitions
- Cosmic String Interpretation of NANOGrav Pulsar Timing Data
- Common-red-signal analysis with 24-yr high-precision timing of the European Pulsar Timing Array: Inferences in the stochastic gravitational-wave background search
- Gravitational-Wave Stochastic Background from Kinks and Cusps on Cosmic Strings
- Has NANOGrav found first evidence for cosmic strings?
- Did NANOGrav see a signal from primordial black hole formation?
- Universal infrared scaling of gravitational wave background spectra
- Solar-Mass Primordial Black Holes Explain NANOGrav Hint of Gravitational Waves
- From NANOGrav to LIGO with metastable cosmic strings
- Gravitational waves from vacuum first order phase transitions II: from thin to thick walls
- Gravitational Waves and Dark Radiation from Dark Phase Transition: Connecting NANOGrav Pulsar Timing Data and Hubble Tension
- Towards an all-orders calculation of the electroweak bubble wall velocity
- Searching For Gravitational Waves From Cosmological Phase Transitions With The NANOGrav 12.5-year dataset
- Stochastic gravitational waves from cosmic string loops in scaling
- Whispers from the dark side: Confronting light new physics with NANOGrav data
- Massive black hole binary systems and the NANOGrav 12.5 year results
- Gravitational waves from colliding vacuum bubbles in gauge theories
- Hybrid cosmological attractors
- NANOGrav results and Dark First Order Phase Transitions
- Can we observe the QCD phase transition-generated gravitational waves through pulsar timing arrays?
- Hot New Early Dark Energy
- Noise analysis in the European Pulsar Timing Array data release 2 and its implications on the gravitational-wave background search
- Chain Early Dark Energy: Solving the Hubble Tension and Explaining Today's Dark Energy
- Escape from supercooling with or without bubbles: gravitational wave signatures
- Gravitational traces of broken gauge symmetries
- Gravitational waves from a dark phase transition in the light of NANOGrav 12.5 yr data
- Slow nucleation rates in Chain Inflation with QCD Axions or Monodromy
- The Power Spectrum of Density Perturbations in Chain Inflation
- Natural Chain Inflation
Cited by in corpus (10)
- Primordial gravitational waves in the nano-Hertz regime and PTA data -- towards solving the GW inverse problem
- Supercooling in Radiative Symmetry Breaking: Theory Extensions, Gravitational Wave Detection and Primordial Black Holes
- Can supercooled phase transitions explain the gravitational wave background observed by pulsar timing arrays?
- Supercool subtleties of cosmological phase transitions
- Implications of Nano-Hertz Gravitational Waves on Electroweak Phase Transition in the Singlet Dark Matter Model
- Mirror QCD phase transition as the origin of the nanohertz Stochastic Gravitational-Wave Background
- Dark Matter and Gravity Waves from a Dark Big Bang
- Model-Independent Radiative Symmetry Breaking and Gravitational Waves
- From Hubble to Bubble
- Gauge-independent Gravitational Waves from Cogenesis in a Conserving Universe