What does it take to have $N_{\rm eff} < 3$ at CMB times?
Miguel Escudero, Maksym Ovchynnikov, Neal Weiner

Abstract
The vast majority of extensions of the Standard Model affecting the number of effective relativistic neutrino species () do so additively, namely, they enhance this quantity with some light state contributing to dark radiation. In this work, we consider precisely the opposite case: new physics scenarios that can lead to that are consistent with all known cosmological, astrophysical, and laboratory data. We are motivated by three main reasons: 1) a recent measurement from ACT and SPT in combination with Planck that leads to , 2) by a new and powerful measurement of the primordial helium abundance, which anchors to be very close to the Standard Model value one second after the Big Bang, 3) by the deployment of the Simons Observatory which will provide precise tests of the radiation content in the Universe and which…
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