Breaking the Dark Degeneracy with the Drifting Coefficient of the Field Cluster Mass Function
Suho Ryu (1), Jounghun Lee (1), Marco Baldi (2,3,4) ((1) Seoul, National University, (2) Alma Mater Studiorum Universit\`a di Bologna, (3), Osservatorio Astronomico di Bologna, (4) Sezione di Bologna)

TL;DR
This paper demonstrates that analyzing the redshift evolution of the drifting coefficient of the field cluster mass function can effectively break degeneracies among various cosmological models, providing a new probe of gravity and dark energy physics.
Contribution
It introduces a method to use the redshift evolution of the drifting coefficient to distinguish between standard and non-standard cosmologies.
Findings
The analytic formula with a fitted drifting coefficient matches numerical results across redshifts.
The evolution of the drifting coefficient differs significantly among cosmologies.
The drifting coefficient can discriminate between degenerate cosmologies without prior background information.
Abstract
We present a numerical analysis supporting the evidence that the redshift evolution of the drifting coefficient of the field cluster mass function is capable of breaking several cosmic degeneracies. This evidence is based on the data from the CoDECS and DUSTGRAIN-pathfinder simulations performed separately for various non-standard cosmologies including coupled dark energy, gravity and combinations of gravity with massive neutrinos as well as for the standard CDM cosmology. We first numerically determine the field cluster mass functions at various redshifts in the range of for each cosmology. Then, we compare the analytic formula developed in previous works with the numerically obtained field cluster mass functions by adjusting its drifting coefficient, , at each redshift. It is found that the analytic formula with the best-fit coefficient…
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