Quantum Noise in Gravitation and Cosmology
Bei-lok Hu, Andrew Matacz

TL;DR
This paper explores the role of quantum noise in gravitation and cosmology, linking quantum fluctuations to phenomena like particle creation and galaxy formation, using influence functional and fluctuation-dissipation relations.
Contribution
It introduces a generalized fluctuation-dissipation framework for quantum fields in cosmological settings and relates noise characteristics to particle creation processes.
Findings
Quantum noise influences galaxy formation and entropy generation.
Thermal spectra are observed by accelerated or expanding universe observers.
Backreaction effects can be analyzed using the influence functional approach.
Abstract
We begin by enumerating the many processes in gravitation and cosmology where quantum noise and fluctuations play an active role such as particle creation, galaxy formation and entropy generation. Using the influence functional we first explain the origin and nature of noise in quantum systems interacting with an environment at a finite temperature. With linear coupling to nonohmic baths or at low temperatures, colored noise and nonlocal dissipation would appear and for nonlinear coupling multiplicative noise is generally expected. We derive a generalized fluctuation- dissipation relation for these systems. Then using a model of quantum Brownian motion in a bath of parametric oscillators, we show how noise and dissipation can be related to the Bogolubov coefficients of parametric amplification, which in the second-quantized sense, depicts cosmological particle creation in a dynamic…
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Taxonomy
TopicsAdvanced Thermodynamics and Statistical Mechanics · Cosmology and Gravitation Theories · Quantum Electrodynamics and Casimir Effect
