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Tatevik Vardanyan

Publications and source records attributed to Tatevik Vardanyan.

4 recordsLinked to original sources

Slow-rolling down the curvature: a reassessment of the Planck constraints on $ϕ^2$ inflation in a closed universe

We revisit the Cosmic Microwave Background (CMB) constraints on the spatial curvature of the Universe, assessing how they change when the curvature parameter and the primordial inflationary scalar spectrum are treated consistently within theoretically motivated frameworks. Instead of relying on the phenomenological parametrisation commonly used to capture curvature effects at the largest scales, we present a case study based on closed quadratic inflation, where the primordial spectrum is derived in full generality and in a gauge-invariant manner. Within this framework, we analyze both the $\texttt{plik}$ PR3 and $\texttt{CamSpec}$ PR4 Planck CMB likelihoods and find that the constraints on $Ω_{\mathcal{K}}$ shift towards spatial flatness. In $\texttt{plik}$ the preference for $Ω_{\mathcal{K}}<0$ decreases from $\gtrsim 3.5σ$ to $\sim 2.5σ$, while in $\texttt{CamSpec}$ it reduces to $\sim 2σ$. At large angular scales ($\ell < 10$), our model explains the low-$\ell$ power suppression anomaly, notably improving the fit to the quadrupole. However, the reduced preference for highly negative values of $Ω_{\mathcal{K}}$ only partially accounts for the lensing anomaly at high multipoles, worsening the fit to the $\texttt{plik}$ spectrum at small scales. By contrast, in the $\texttt{CamSpec}$ PR4 spectrum, where the lensing anomaly is less pronounced, the model yields an overall improvement. Our analysis highlights a key conceptual point: closed-inflation models tie the curvature parameter to the inflationary dynamics and the primordial spectrum, enforcing consistency conditions that do not necessarily allow for the large deviations from flatness seen in phenomenological parametrisations. In the case of quadratic inflation, these restrictions reduce the apparent evidence for negative curvature reported by earlier analyses, while allowing for a mildly closed geometry.

astro-ph.CO

Matter-antimatter asymmetry in a rotating universe: Dirac spinors in axisymmetric Bianchi IX cosmology

The standard $Λ$CDM model, based on a highly symmetric FLRW geometry, successfully explains many observations but faces unresolved issues, motivating the exploration of alternative cosmological frameworks. We investigate the influence of spacetime geometry on the matter-antimatter asymmetry of the Universe within the Bianchi IX cosmological model. Motivated by early-universe dynamics, potential contributions to cosmological angular momentum, and the axisymmetric Bianchi IX model's relevance to certain CMB anomalies, we formulate the Dirac field in this background. Starting with a Lagrangian formalism, we derive the Dirac equation and develop the harmonic analysis of spinor fields, extending previous treatments in the Mixmaster universe. We solve the Dirac equations for non-rotating and rotating axisymmetric Bianchi IX spacetimes using a fixed-background approximation. We find that spatial anisotropy induces spin-dependent energy splittings, while global rotation produces particle-antiparticle asymmetries in the energy spectra, effects absent in FLRW models. These results demonstrate that spacetime geometry alone can imprint nontrivial structure on particle spectra, suggesting that geometric effects may contribute to the matter-antimatter asymmetry.

gr-qc

Quantum-gravitational corrections to the power spectrum for a closed universe

We study the quantum-gravitational corrections to the power spectrum of a gauge-invariant inflationary scalar perturbations in a closed model of a universe. We consider canonical quantum gravity as an approach to quantizing gravity. This leads to the Wheeler-DeWitt equation, which has been studied by applying a semiclassical Born-Oppenheimer type of approximation. At the corresponding orders of approximation, we recover both the uncorrected and quantum-gravitationally corrected Schroedinger equations for the perturbation modes from which we calculate the quantum-gravitational corrections to the power spectrum in the slow-roll regime. The results are compared to the power spectra for the flat model of the universe.

gr-qc

Power spectrum for perturbations in an inflationary model for a closed universe

We derive the power spectrum of primordial quantum fluctuations in an inflationary universe for curvature parameter ${\mathcal K}=1$. This is achieved through a Born--Oppenheimer type of approximation scheme from the Wheeler--DeWitt equation of canonical quantum gravity using gauge-invariant variables. Compared to the flat model, the closed model exhibits a deficit of power at large scales.

gr-qc