Search arXivSearch

arXiv · 1607.03368

Graviton mass might reduce tension between early and late time cosmological data

Abstract

The standard $Λ$-CDM predicts a growth of structures which tends to be higher than the values of redshift space distortion (RSD) measurements, if the cosmological parameters are fixed by the CMB data. In this paper we point out that this discrepancy can be resolved/understood if we assume that the graviton has a small but non-zero mass. In the context of the Minimal Theory of Massive Gravity (MTMG), due to infrared Lorentz violations measurable only at present cosmological scales, the graviton acquires a mass without being haunted by unwanted extra degrees of freedom. While the so-called self-accelerating branch of cosmological solutions in MTMG has the same phenomenology for the background as well as the scalar- and vector-type linear perturbations as the $Λ$-CDM in General Relativity (GR), it is possible to choose another branch so that the background is the same as that in GR but the evolution of matter perturbations gets modified by the graviton mass. On studying the fit of such modified dynamics to the above-mentioned RSD measurements, we find that the $Λ$-CDM model is less probable than MTMG by two orders of magnitude. With the help of the cross correlation between the integrated Sachs-Wolfe (ISW) effect and the large scale structure (LSS), the data also pin-down the graviton mass squared around $μ^2\approx - (3\times 10^{-33} \rm{eV})^2$, which is consistent with the latest bound $|μ^2|<(1.2\times 10^{-22} \rm{eV})^2$ set by the recent LIGO observation.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

Antonio De Felice, Shinji Mukohyama. 2017-02-20. Graviton mass might reduce tension between early and late time cosmological data. https://doi.org/10.1103/physrevlett.118.091104

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related papers

Consistent treatment of flavour-specific neutrino self-interactions in cosmology

We study the impact of flavour-specific neutrino self-interactions on the CMB anisotropy spectrum and consistently take into account neutrino mixing. Starting from the neutrino quantum kinetic equations, we derive the neutrino Boltzmann hierarchies for the neutrino mass states. Our work shows that most scenarios of flavour-specific neutrino self-interactions are well approximated by a combined fluid approach. In practice, this implies that existing CMB bounds on the effective neutrino coupling are weakened by a factor $\sqrt{2}$ for scenarios in which only two neutrino flavours interact (irrespective of which flavours). If only one neutrino flavour interacts the bounds are weaker by a factor $\sqrt{6}$, with the only caveat that the combined fluid approach is less reliable for only $ν_e$ interacting.

astro-ph.CO

Search for Quintessence-Like Pseudoscalar Dark Energy Effects on $^{56}\text{Fe}$ Nuclear Transition Energies in Supernova 1991T

The nature of dark energy remains one of the most important unanswered problems in physics. Here we use observations of the Type Ia supernova 1991T to constrain the recent evolution of a dynamical pseudoscalar quintessence-like field $Q(t)$ by comparing the gamma ray spectra emitted by the $^{56}\text{Fe}$ nuclei observed by COMPTEL aboard the Compton Gamma Ray Observatory to terrestrial values. We found that the average fractional energy shift of both the first and second excited states is $δE/E = -0.006\pm0.008$, including statistical and systematic errors, indicating that the energies of these astrophysical gamma rays are consistent with the gamma rays produced in terrestrial labs. Assuming that any energy shift is caused by a dynamical QCD axion-like pseudoscalar field $Q(t)$, the observed energy deviations are consistent with a fractional rate of change of the pion mass at the $68\%$ Gaussian limit given by $ 3\times10^{-11} \geq \dot{m_π}/m_π\geq-15\times10^{-11}\text{ yr}^{-1}$. The observed energy deviation was also used to determine the rate of change of the quintessence-like field ($\dot{Q}_0$) for tracking models: $ -1\times10^7\leq \dot{Q}_{\rm 0} \leq 7\times10^7 \text{ GeV/yr}$. This upper limit on $\dot{Q}_0$ results in a fractional kinetic energy $Ω_{KE}\leq0.029$ and equation of state $-1.0\leq w_{Q}\leq-0.92$, which are consistent with the cosmological constant ($\dot{Q}_0 =0$, $Ω_{KE}=0$, and $w=-1.0$). Finally, these results were complemented by cosmological observations to place limits on the tracker model decay constant coefficient and tracking power potential.

astro-ph.CO

The Heavy Tailed Non-Gaussianity of the Supermassive Black Hole Gravitational Wave Background

We study the non-Gaussian features of the gravitational wave (GW) background generated by a population of inspiraling supermassive black hole (SMBH) binaries. We show that the SMBH GW amplitude distribution (GWAD) features a universal heavy power-law tail $\propto A^{-4}$, while the low-amplitude tail depends on the SMBH merger rate and the energy-loss mechanisms of the binaries. The distribution of the induced timing residuals inherits this heavy tail. As a result, the ensemble averaged statistical moments of order three and higher diverge, limiting their usefulness as measures of non-Gaussianity, and the GW background from SMBH binaries exhibits the single loud source principle, according to which the strongest signals are more likely to be caused by a small number of loud sources. We confirm that the variance-averaged Gaussian approximation accurately describes the timing residual statistics. This approximation justifies a factored likelihood structure that combines standard Gaussian-process PTA posteriors with the non-Gaussian population prior, enabling consistent incorporation of non-Gaussian effects into SMBH model inference. We provide a fast and flexible Python implementation to compute the distribution of timing residuals from a given SMBH merger rate or GWAD.

astro-ph.CO