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A hierarchy of voids: Much ado about nothing

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

2 Pith papers citing it
abstract

We present a model for the distribution of void sizes and its evolution in the context of hierarchical scenarios of gravitational structure formation. We find that at any cosmic epoch the voids have a size distribution which is well-peaked about a characteristic void size which evolves self-similarly in time. This is in distinct contrast to the distribution of virialized halo masses which does not have a small-scale cut-off. In our model, the fate of voids is ruled by two processes. The first process affects those voids which are embedded in larger underdense regions: the evolution is effectively one in which a larger void is made up by the mergers of smaller voids, and is analogous to how massive clusters form from the mergers of less massive progenitors. The second process is unique to voids, and occurs to voids which happen to be embedded within a larger scale overdensity: these voids get squeezed out of existence as the overdensity collapses around them. It is this second process which produces the cut-off at small scales. In the excursion set formulation of cluster abundance and evolution, solution of the cloud-in-cloud problem, i.e., counting as clusters only those objects which are not embedded in larger clusters, requires study of random walks crossing one barrier. We show that a similar formulation of void evolution requires study of a two-barrier problem: one barrier is required to account for voids-in-voids, and the other for voids-in-clouds. Thus, in our model, the void size distribution is a function of two parameters, one of which reflects the dynamics of void formation, and the other the formation of collapsed objects.

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fields

astro-ph.CO 2

years

2026 2

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UNVERDICTED 2

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background 1

representative citing papers

Unveiling $f(R)$ Gravity with Void-Galaxy Cross-Correlation Multipoles

astro-ph.CO · 2026-05-12 · unverdicted · novelty 6.0 · 2 refs

Semi-analytical calculation of void-galaxy cross-correlation multipoles in Hu-Sawicki f(R) gravity reveals size-dependent deviations from LambdaCDM up to 29.7 percent for small voids, amplified by nonlinear evolution and potentially observable in Stage-IV surveys.

Constraining Neutrino Mass with the Void Weak Lensing Effect

astro-ph.CO · 2026-03-10 · unverdicted · novelty 6.0

Simulations of void-shear cross-correlation demonstrate that void lensing can constrain total neutrino mass to σ(M_ν)=0.096 eV without shape noise and 0.340 eV with Stage-III-like noise.

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Showing 2 of 2 citing papers.

  • Unveiling $f(R)$ Gravity with Void-Galaxy Cross-Correlation Multipoles astro-ph.CO · 2026-05-12 · unverdicted · none · ref 30 · 2 links · internal anchor

    Semi-analytical calculation of void-galaxy cross-correlation multipoles in Hu-Sawicki f(R) gravity reveals size-dependent deviations from LambdaCDM up to 29.7 percent for small voids, amplified by nonlinear evolution and potentially observable in Stage-IV surveys.

  • Constraining Neutrino Mass with the Void Weak Lensing Effect astro-ph.CO · 2026-03-10 · unverdicted · none · ref 89 · internal anchor

    Simulations of void-shear cross-correlation demonstrate that void lensing can constrain total neutrino mass to σ(M_ν)=0.096 eV without shape noise and 0.340 eV with Stage-III-like noise.