The effect of quantum decoherence on inflationary gravitational waves
Jessie de Kruijf, Nicola Bartolo

TL;DR
This paper investigates how quantum decoherence during inflation affects gravitational waves, using a Lindblad equation, and explores how current and future detectors can constrain the decoherence process.
Contribution
It introduces a Lindblad equation approach to model quantum decoherence of inflationary gravitational waves and assesses observational constraints and prospects.
Findings
Decoherence causes a scale-dependent increase in gravitational wave power spectrum.
Current bounds from CMB and LIGO-Virgo-KAGRA constrain the interaction strength.
Future detectors like ET can significantly improve constraints on decoherence parameters.
Abstract
The theory of inflation provides a mechanism to explain the structures we observe today in the Universe, starting from quantum-mechanically generated fluctuations. However, this leaves the question of: how did the quantum-to-classical transition, occur? During inflation, tensor perturbations interact (at least gravitationally) with other fields, meaning that we need to view these perturbations as an open system that interacts with an environment. In this paper, the evolution of the system is described using a Lindblad equation, which describes the quantum decoherence of the system. This is a possible mechanism for explaining the quantum-to-classical transition. We show that this quantum decoherence leads to a scale-dependent increase of the gravitational wave power spectrum, depending on the strength and time dependence of the interaction between the system and the environment. By using…
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Taxonomy
TopicsCosmology and Gravitation Theories
