Anthropic Bound on Dark Radiation and its Implications for Reheating
arXiv:1904.12864 · doi:10.1088/1475-7516/2019/07/001
Abstract
We derive an anthropic bound on the extra neutrino species, , based on the observation that a positive suppresses the growth of matter fluctuations due to the prolonged radiation dominated era, which reduces the fraction of matter that collapses into galaxies, hence, the number of observers. We vary and the positive cosmological constant while fixing the other cosmological parameters. We then show that the probability of finding ourselves in a universe satisfying the current bound is of order a few percents for a flat prior distribution. If is found to be close to the current upper bound or the value suggested by the tension, the anthropic explanation is not very unlikely. On the other hand, if the upper bound on is significantly improved by future observations, such simple anthropic consideration does not explain the small value of . We also study simple models where dark radiation consists of relativistic particles produced by heavy scalar decays, and show that the prior probability distribution sensitively depends on the number of the particle species.
14 pages, 4 figures; V2: Added references; V3: Published version, Added the anthropic bound on the number of neutrino flavors
References in corpus (11)
- Large Magellanic Cloud Cepheid Standards Provide a 1% Foundation for the Determination of the Hubble Constant and Stronger Evidence for Physics Beyond LambdaCDM
- Dark Radiation in LARGE Volume Models
- Galileon Gravity in Light of ISW, CMB, BAO and data
- Measuring the Hubble constant with Type Ia supernovae as near-infrared standard candles
- Inflation meets neutrinos
- Reheating for Closed String Inflation
- Natural and Multi-Natural Inflation in Axion Landscape
- A theory of extra radiation in the Universe
- Axion Landscape and Natural Inflation
- Observable dark radiation from cosmologically safe QCD axion
- On Axion Reheating in the String Landscape