ArXiv TLDR

Quantum-information diagnostics of cosmological perturbations with nontrivial sound speed in inflation

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2604.21755

Shi-Cheng Liu, Lei-Hua Liu, Bichu Li, Hai-Qing Zhang, Peng-Zhang He

gr-qcastro-ph.COhep-phhep-thquant-ph

TLDR

This paper reveals how nontrivial sound speed during inflation profoundly impacts the quantum entanglement and classicality of cosmological perturbations.

Key contributions

  • Investigates quantum-information diagnostics of cosmological perturbations with nontrivial sound speed.
  • Shows nontrivial sound speed suppresses state purity and enhances effective mixedness.
  • Demonstrates it amplifies entropic/entanglement diagnostics and postpones classicality onset.
  • Introduces a bounded variable for stable numerical simulations of inflationary dynamics.

Why it matters

This research provides new insights into the quantum nature of the early universe. By showing how sound speed affects entanglement and decoherence, it offers a novel way to probe inflationary models. These distinct quantum-information signatures could be crucial for future cosmological observations.

Original Abstract

In this work, we systematically investigate the quantum-information diagnostics of cosmological perturbations with a nontrivial sound speed, utilizing a normalized open two-mode squeezed-state framework. Rather than introducing new observables, our analysis focuses on how a modified sound speed dynamically reshapes the Schrödinger evolution of the squeezing parameters ($r_k$ and $φ_k$). We demonstrate how these dynamical changes are inherited by the reduced density matrix of the observable sector. By employing a sound-speed-resonance parametrization, we derive and evaluate the purity, von Neumann entropy, Rényi entropies, and logarithmic negativity. To overcome the intrinsic multiscale stiffness of the post-inflationary equations, we introduce a bounded variable $x = \tanh r_k$ as a partial regularization, which enables reliable numerical simulations exclusively within the inflationary regime. Our numerical results reveal that a nontrivial sound speed significantly suppresses the purity of the reduced state, indicating enhanced effective mixedness. Simultaneously, it strongly amplifies and modulates both the entropic and entanglement diagnostics. More precisely, a nontrivial sound speed postpones the onset of classicality by modulating the decoherence process. Ultimately, we show that a nontrivial sound speed leaves distinct and identifiable quantum-information signatures within the entanglement structure of the early universe.

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