Power spectrum for the small-scale Universe
Lawrence M. Widrow, Pascal J. Elahi, Robert J. Thacker, Mark, Richardson, and Evan Scannapieco

TL;DR
This paper presents high-resolution simulations of small-scale structure formation in a cold dark matter universe, analyzing power spectra and comparing them with theoretical models, leading to a new empirical fitting formula.
Contribution
It provides the first self-similar scaling results for an n=-2.25 power spectrum and introduces a new empirical fitting formula for the nonlinear power spectrum.
Findings
Self-similar scaling established for n=-1, -2, and -2.25.
Renormalization group improves perturbation theory predictions.
New empirical fitting formula differs from previous models.
Abstract
The first objects to arise in a cold dark matter universe present a daunting challenge for models of structure formation. In the ultra small-scale limit, CDM structures form nearly simultaneously across a wide range of scales. Hierarchical clustering no longer provides a guiding principle for theoretical analyses and the computation time required to carry out credible simulations becomes prohibitively high. To gain insight into this problem, we perform high-resolution (N=720^3 - 1584^3) simulations of an Einstein-de Sitter cosmology where the initial power spectrum is P(k) propto k^n, with -2.5 < n < -1. Self-similar scaling is established for n=-1 and n=-2 more convincingly than in previous, lower-resolution simulations and for the first time, self-similar scaling is established for an n=-2.25 simulation. However, finite box-size effects induce departures from self-similar scaling in…
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