Cosmological spectrum of two-point correlation function from vacuum fluctuation of Stringy Axion field in De Sitter space: A study of the role of Quantum Entanglement
Sayantan Choudhury, Sudhakar Panda

TL;DR
This paper investigates how quantum entanglement influences the primordial power spectrum of vacuum fluctuations in axion fields from string theory in de Sitter space, revealing distinguishable features and potential observational signatures.
Contribution
It introduces three approaches to compute the power spectrum considering quantum entanglement, highlighting differences and potential observational effects in early universe cosmology.
Findings
Reproduces scale-invariant spectrum for massless axion at leading order.
Identifies sub-leading differences due to entanglement among formalisms.
Quantifies spectral tilt and large-scale features influenced by entanglement.
Abstract
In this work, we study the impact of quantum entanglement on the two-point correlation function and the associated primordial power spectrum of mean square vacuum fluctuation in a bipartite quantum field theoretic system. The field theory that we consider is the effective theory of axion field arising from Type IIB string theory compactified to four dimensions. We compute the expression for the power spectrum of vacuum fluctuation in three different approaches, namely (1) field operator expansion (FOE) technique with the quantum entangled state, (2) reduced density matrix (RDM) formalism with mixed quantum state and (3) the method of non-entangled state (NES). For massless axion field, in all these three formalism, we reproduce, at the leading order, the exact scale-invariant power spectrum which is well known in the literature. We observe that due to quantum entanglement, the…
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