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Large-scale Structure in f(T) Gravity

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arxiv 1103.2786 v1 pith:5FX4FTLM submitted 2011-03-14 astro-ph.CO gr-qchep-ph

Large-scale Structure in f(T) Gravity

classification astro-ph.CO gr-qchep-ph
keywords gravityscalescosmiccovariantdegreeequationsfreedomgalaxies
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In this work we study the cosmology of the general f(T) gravity theory. We express the modified Einstein equations using covariant quantities, and derive the gauge-invariant perturbation equations in covariant form. We consider a specific choice of f(T), designed to explain the observed late-time accelerating cosmic expansion without including an exotic dark energy component. Our numerical solution shows that the extra degree of freedom of such f(T) gravity models generally decays as one goes to smaller scales, and consequently its effects on scales such as galaxies and galaxies clusters are small. But on large scales, this degree of freedom can produce large deviations from the standard LCDM scenario, leading to severe constraints on the f(T) gravity models as an explanation to the cosmic acceleration.

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Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score.

  1. Higgs-like inflation in scalar-torsion $f(T,\phi)$ gravity in light of ACT-SPT-DESI constraints

    gr-qc 2025-12 conditional novelty 5.0

    Higgs-like inflation in f(T,φ) torsion gravity can accommodate the ACT/DESI upward shift in the scalar spectral index while predicting a tensor-to-scalar ratio r≈0.01–0.04.