English

Lensing the darkness: The matter density profile in cosmic voids from UNIONS

Cosmology and Nongalactic Astrophysics 2026-02-18 v2

Abstract

We measure the distribution of matter contained within the emptiest regions of the Universe: cosmic voids. We use the large overlap between the Ultraviolet Near-Infrared Optical Northern Survey (UNIONS) and voids identified in the LOWZ and CMASS catalogues of the Baryon Oscillation Spectroscopic Survey (BOSS) to constrain the excess surface mass density of voids using weak lensing. We present and validate a novel method for computing the Gaussian component of the conventional weak lensing covariance, adapted for use with void studies. We detect the stacked weak lensing void density profile at the 6.2σ6.2\sigma level, the most significant detection of void lensing from spectroscopically-identified voids to date. We find that large and small voids have different matter density profiles, as expected from numerical studies of void profiles. This difference is significant at the 2.3σ2.3\sigma level. Comparing the void profile to a measurement of the void-galaxy cross-correlation to test the linearity of the relationship between mass and light, we find good visual agreement between the two, and a galaxy bias factor of 2.45±0.362.45\pm0.36, consistent with other works. This work represents a promising detection of the lensing effect from underdensities, with the goal of promoting its development into a competitive cosmological probe.

Keywords

Cite

@article{arxiv.2507.13450,
  title  = {Lensing the darkness: The matter density profile in cosmic voids from UNIONS},
  author = {Hunter L. Martin and Michael J. Hudson and Alex Woodfinden and Lucie Baumont and Thomas de Boer and Pierre A. Burger and Jack Elvin-Poole and Sébastien Fabbro and Samuel Farrens and Sacha Guerrini and Axel Guinot and Fabian Hervas-Peters and Hendrik Hildebrandt and Martin Kilbinger and Magdy Morshed and Ludovic van Waerbeke and Anna Wittje},
  journal= {arXiv preprint arXiv:2507.13450},
  year   = {2026}
}

Comments

21 pages, 13 figures, accepted version for publication in MNRAS