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Measurement of the Weyl potential evolution from the first three years of Dark Energy Survey data

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arxiv 2312.06434 v2 pith:DBS7PJIO submitted 2023-12-11 astro-ph.CO

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keywords potentialweyldarkdataenergylambdameasurementssigma
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abstract

The Weyl potential, which is the sum of the spatial and temporal distortions of the Universe's geometry, provides a direct way of testing the theory of gravity and the validity of the $\Lambda$CDM (Lambda Cold Dark Matter) model. Here we present measurement of the Weyl potential at four redshifts bins using data from the first three years of observations of the Dark Energy Survey. We find that the measured Weyl potential is 2$\sigma$, respectively 2.8$\sigma$, below the $\Lambda$CDM predictions in the two lowest redshift bins. We show that these low values of the Weyl potential are at the origin of the tension between Cosmic Microwave Background measurements and weak lensing measurements, regarding the parameter $\sigma_8$ which quantifies the clustering of matter. Interestingly, we find that the tension remains if no information from the Cosmic Microwave Background is used. Dark Energy Survey data on their own prefer a high value of the primordial fluctuations, together with a slow evolution of the Weyl potential. An important feature of our method is that the measurements of the Weyl potential are model-independent and can therefore be confronted with any theory of gravity, allowing efficient tests of models beyond General Relativity.

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Cited by 3 Pith papers

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    astro-ph.CO 2025-06 conditional novelty 6.0 of 10

    The new Ngrow statistic, built from galaxy clustering and lensing, finds no deviation from GR and forecasts stage-IV surveys to bound geometry-density growth mismatches at 2-4%.

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    Cosmological data can constrain only a handful of EFT parameters for single-scalar dark energy; extended models show modest preference over Λ but remain underdetermined and challenged by fifth forces and screening.

  3. Quintessence-Chameleon transitions in anisotropic Kiselev model of neutron stars

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    A chameleon-Kiselev neutron star model claims scalar-driven pressure anisotropies, a 1.75 solar mass maximum, and an 86% tidal deformability suppression, but headline numbers contradict each other across the paper.

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