No late-time role for adiabatic torsion: a no-go result for Hubble-cutoff holographic dark energy in Einstein–Cartan cosmology

Abstract In Friedmann cosmology with Einstein–Cartan torsion, the homogeneous torsion mode compatible with a separately conserved matter sector scales as $$\\Phi \\propto a^{-3}$$ Φ ∝ a - 3 and enters the Friedmann constraint as a stiff component of negative energy density, $$-3\\Phi ^{2}\\propto a^{-6}$$ - 3 Φ 2 ∝ a - 6 . It has recently been claimed that this mode rescues the Hubble radius as an infrared cutoff for holographic dark energy, producing late-time acceleration and a phantom-divide crossing of possible relevance to DESI. We show that it cannot. With the Hubble cutoff the holographic density drops out of the deceleration parameter, and the only accelerating regime is the transient window $$\\bar{a}\\le a<4^{1/3}\\bar{a}$$ a ¯ ≤ a < 4 1 / 3 a ¯ around the torsion bounce at $$H(\\bar{a})=0$$ H ( a ¯ ) = 0 ; placing that window at observable redshifts would force the Hubble rate to vanish in our recent past, against the measured expansion history. Requiring a viable history yields nested upper bounds on $$\\Omega _{\\Phi }\\equiv (\\Phi _{0}/H_{0})^{2}$$ Ω Φ ≡ ( Φ 0 / H 0 ) 2 : fitting the official DESI DR2 BAO likelihood gives $$\\Omega _{\\Phi }<8.7\\times 10^{-4}$$ Ω Φ < 8.7 × 10 - 4 ( $$95\\%$$ 95 % CL), the existence of a spectroscopically confirmed galaxy at $$z=14.32$$ z = 14.32 gives $$8.4\\times 10^{-5}$$ 8.4 × 10 -

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Publication Details

Journal
The European Physical Journal C
Published
2026-09-21
DOI
https://doi.org/10.1140/epjc/s10052-026-16337-0
Primary Topic
Cosmology and Gravitation Theories
Type
article
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article

No late-time role for adiabatic torsion: a no-go result for Hubble-cutoff holographic dark energy in Einstein–Cartan cosmology

Samuel Lepe, Fernando Izaurieta, Cristian Quinzacara
The European Physical Journal C
Cosmology and Gravitation Theories
article

No late-time role for adiabatic torsion: a no-go result for Hubble-cutoff holographic dark energy in Einstein–Cartan cosmology

Samuel Lepe, Fernando Izaurieta, Cristian Quinzacara
article en

Abstract

Abstract In Friedmann cosmology with Einstein–Cartan torsion, the homogeneous torsion mode compatible with a separately conserved matter sector scales as $$\Phi \propto a^{-3}$$ Φ ∝ a - 3 and enters the Friedmann constraint as a stiff component of negative energy density, $$-3\Phi ^{2}\propto a^{-6}$$ - 3 Φ 2 ∝ a - 6 . It has recently been claimed that this mode rescues the Hubble radius as an infrared cutoff for holographic dark energy, producing late-time acceleration and a phantom-divide crossing of possible relevance to DESI. We show that it cannot. With the Hubble cutoff the holographic density drops out of the deceleration parameter, and the only accelerating regime is the transient window $$\bar{a}\le a<4^{1/3}\bar{a}$$ a ¯ ≤ a < 4 1 / 3 a ¯ around the torsion bounce at $$H(\bar{a})=0$$ H ( a ¯ ) = 0 ; placing that window at observable redshifts would force the Hubble rate to vanish in our recent past, against the measured expansion history. Requiring a viable history yields nested upper bounds on $$\Omega _{\Phi }\equiv (\Phi _{0}/H_{0})^{2}$$ Ω Φ ≡ ( Φ 0 / H 0 ) 2 : fitting the official DESI DR2 BAO likelihood gives $$\Omega _{\Phi }<8.7\times 10^{-4}$$ Ω Φ < 8.7 × 10 - 4 ( $$95\%$$ 95 % CL), the existence of a spectroscopically confirmed galaxy at $$z=14.32$$ z = 14.32 gives $$8.4\times 10^{-5}$$ 8.4 × 10 -

The European Physical Journal CVol. 86(9)
Pontificia Universidad Católica de Valparaíso (CL), San Sebastián University (CL)
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Cosmology and Gravitation Theories
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