CWRU PAT Coffee Agenda

Tuesdays 10:30 - 11:30 | Fridays 11:30 - 12:30

+2 Exploring the quantum speed limit with computer games

jtd55 +1 cjc5 +1

+2 The equivalence principle and QFT: Can a particle detector tell if we live inside a hollow shell?.

kxp265 +1 oxg34 +1

+1 Breaking Be: a sterile neutrino solution to the cosmological lithium problem.

sxk1031 +1

+1 Quasars as a tracer of large-scale structures in the distant universe.

jtd55 +1

Showing votes from 2016-06-21 11:30 to 2016-06-24 12:30 | Next meeting is Tuesday Aug 5th, 10:30 am.

users

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astro-ph.CO

  • Breaking Be: a sterile neutrino solution to the cosmological lithium problem.- [PDF] - [Article]

    Laura Salvati, Luca Pagano, Massimiliano Lattanzi, Martina Gerbino, Alessandro Melchiorri
     

    The possibility that the so-called "lithium problem", i.e., the disagreement between the theoretical abundance predicted for primordial $^7 \text{Li}$ assuming standard nucleosynthesis and the value inferred from astrophysical measurements, can be solved through a non-thermal Big Bang Nucleosynthesis (BBN) mechanism has been investigated by several authors. In particular, it has been shown that the decay of a MeV-mass particle, like, e.g., a sterile neutrino, decaying after BBN not only solves the lithium problem, but also satisfies cosmological and laboratory bounds, making such a scenario worth to be investigated in further detail. In this paper, we constrain the parameters of the model with the combination of current data, including Planck 2015 measurements of temperature and polarization anisotropies of the Cosmic Microwave Background (CMB), FIRAS limits on CMB spectral distortions, astrophysical measurements of primordial abundances and laboratory constraints. We find that a sterile neutrino with mass $M_S = 4.35 _{-0.17} ^{+0.13} \, \text{MeV}$ (at $95\%$ c.l.) and decay time $\tau _S = 1.8 _{-1.6} ^{+1.9} \cdot 10^5 \, \text{s}$ (at $95\%$ c.l.) perfectly accounts for the difference between predicted and observed $^7 \text{Li}$ primordial abundance. The same model also predicts an increase of the effective number of relativistic degrees of freedom at the time of CMB decoupling $\Delta N_\text{eff}^\text{cmb}\equiv N_\text{eff}^\text{cmb} -3.046 = 0.34 _{-0.14} ^{+0.16}$ at $95\%$ c.l.. We also provide forecasts for future experiments finding that the combination of measurements from the COrE+ and PIXIE missions will allow to significantly reduce the permitted region for the sterile lifetime and density.

astro-ph.HE

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gr-qc

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