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Neutrino masses and beyond-$\Lambda$CDM cosmology with LSST and future CMB experiments

2 Pith papers cite this work. Polarity classification is still indexing.

2 Pith papers citing it
abstract

Cosmological measurements over the next decade will enable us to shed light on the content and evolution of the Universe. Complementary measurements of the Cosmic Microwave Background (CMB) and Baryon Acoustic Oscillations are expected to allow an indirect determination of the sum of neutrino masses, within the framework of the flat $\Lambda$CDM model. However, possible deviations from $\Lambda$CDM such as a non-zero cosmological curvature or a dark energy equation of state with $w\neq -1$ would leave similar imprints on the expansion rate of the Universe and clustering of matter. We show how future CMB measurements can be combined with late-time measurements of galaxy clustering and cosmic shear from the Large Synoptic Survey Telescope to alleviate this degeneracy. Together, they are projected to reduce the uncertainty on the neutrino mass sum to 30 meV within this more general cosmological model. Achieving a 3$\sigma$ measurement of the minimal 60 meV mass (or 4$\sigma$ assuming $w=-1$) will require a five-fold improved measurement of the optical depth to reionization, obtainable through a large-scale CMB polarization measurement.

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representative citing papers

Cosmological searches for the neutrino mass scale and mass ordering

astro-ph.CO · 2019-07-18 · unverdicted · novelty 4.0

Thesis summarizing an upper limit of 0.12 eV on the neutrino mass sum, bias calibration via CMB lensing cross-correlations, and tighter limits plus stronger normal-ordering preference in non-phantom dynamical dark energy models.

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Showing 2 of 2 citing papers.

  • Cosmological searches for the neutrino mass scale and mass ordering astro-ph.CO · 2019-07-18 · unverdicted · none · ref 16 · internal anchor

    Thesis summarizing an upper limit of 0.12 eV on the neutrino mass sum, bias calibration via CMB lensing cross-correlations, and tighter limits plus stronger normal-ordering preference in non-phantom dynamical dark energy models.

  • CMB-S4 Science Case, Reference Design, and Project Plan astro-ph.IM · 2019-07-10 · unverdicted · none · ref 243 · internal anchor

    Presents the science case, reference design, and project plan for the CMB-S4 ground-based CMB experiment.