Extremal Quantum Black Holes and the Zero-Spin Vacuum: A Deterministic Framework for the Cosmological Bounce

Under the hypothesis that the semi-classical spin moment obeys a Langer-shifted topological quantization rule J = ℏ(s+1/2) derived from the non-commutative quantum group SU_q(2) at the Planck scale, the discrete mass spectrum of extreme quantum black holes (EQBHs) is constructed based on a quantized Christodoulou-Ruffini mass constraint. The uncharged bosonic ground state sets a stable sub-Planckian mass floor of M_P/√2, preventing physical collapse into a singularity via a non-vanishing minimal spin horizon pixelation. At trans-Planckian densities within a contracting universe bubble, the accumulation of a macroscopic gravitino Cooper-pair Bose-Einstein condensate deforms the local vacuum metric. The maximum packing efficiency of this coherent bosonic phase is bounded by the Kepler-Hales volume fraction (η ≈ 74.05%), while interstitial boundary voids host stable fermionic relics acting as cold dark matter. Analytical continuation of the discrete mass spectrum via Riemann and Epstein spectral zeta-function regularization isolates a critical transition scale of M_crit ≈ 0.5601 M_P, where the resulting negative quantum vacuum pressure acts as a topological Casimir energy floor that locally violates the Strong Energy Condition, successfully driving a localized loop quantum cosmology (LQC) bounce. The framework yields strict, parameter-free observational signatures: the tensor-to-scalar ratio is frozen at r = 0.0307 ± 0.00045, and the isotropic cosmic birefringence angle is constrained to the corridor Δβ ∈ [0.033°, 0.084°], offering sharp benchmarks for upcoming CMB polarization experiments (LiteBIRD, CMB-S4). Additionally, a top-down chiral helicity-locking mechanism driven by background axial Cartan torsion is shown to preserve exact linear angular momentum conservation during Standard Model particle creation phases.

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Publication Details

Journal
Zenodo (CERN European Organization for Nuclear Research)
Published
2026-09-15
DOI
https://doi.org/10.5281/zenodo.22763071
Primary Topic
Noncommutative and Quantum Gravity Theories
Type
preprint
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preprint

Extremal Quantum Black Holes and the Zero-Spin Vacuum: A Deterministic Framework for the Cosmological Bounce

Serguei I Maximov
Zenodo (CERN European Organization for Nuclear Research)
Noncommutative and Quantum Gravity Theories
preprint

Extremal Quantum Black Holes and the Zero-Spin Vacuum: A Deterministic Framework for the Cosmological Bounce

Serguei I Maximov
preprint en

Abstract

Under the hypothesis that the semi-classical spin moment obeys a Langer-shifted topological quantization rule J = ℏ(s+1/2) derived from the non-commutative quantum group SU_q(2) at the Planck scale, the discrete mass spectrum of extreme quantum black holes (EQBHs) is constructed based on a quantized Christodoulou-Ruffini mass constraint. The uncharged bosonic ground state sets a stable sub-Planckian mass floor of M_P/√2, preventing physical collapse into a singularity via a non-vanishing minimal spin horizon pixelation. At trans-Planckian densities within a contracting universe bubble, the accumulation of a macroscopic gravitino Cooper-pair Bose-Einstein condensate deforms the local vacuum metric. The maximum packing efficiency of this coherent bosonic phase is bounded by the Kepler-Hales volume fraction (η ≈ 74.05%), while interstitial boundary voids host stable fermionic relics acting as cold dark matter. Analytical continuation of the discrete mass spectrum via Riemann and Epstein spectral zeta-function regularization isolates a critical transition scale of M_crit ≈ 0.5601 M_P, where the resulting negative quantum vacuum pressure acts as a topological Casimir energy floor that locally violates the Strong Energy Condition, successfully driving a localized loop quantum cosmology (LQC) bounce. The framework yields strict, parameter-free observational signatures: the tensor-to-scalar ratio is frozen at r = 0.0307 ± 0.00045, and the isotropic cosmic birefringence angle is constrained to the corridor Δβ ∈ [0.033°, 0.084°], offering sharp benchmarks for upcoming CMB polarization experiments (LiteBIRD, CMB-S4). Additionally, a top-down chiral helicity-locking mechanism driven by background axial Cartan torsion is shown to preserve exact linear angular momentum conservation during Standard Model particle creation phases.

Zenodo (CERN European Organization for Nuclear Research)
Belarusian State University (BY)
Sustainable cities and communities
Noncommutative and Quantum Gravity Theories
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