Quantum out-of-equilibrium cosmology
Abstract In this work, our prime focus is to study the one to one correspondence between the conduction phenomena in electrical wires with impurity and the scattering events responsible for particle production during stochastic inflation and reheating implemented under a closed quantum mechanical sy...
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Online Access: | http://link.springer.com/article/10.1140/epjc/s10052-019-6751-2 |
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doaj-34218be59ee442b78fa84c58dbd6ed192020-11-25T02:43:31ZengSpringerOpenEuropean Physical Journal C: Particles and Fields1434-60441434-60522019-04-01794110710.1140/epjc/s10052-019-6751-2Quantum out-of-equilibrium cosmologySayantan Choudhury0Arkaprava Mukherjee1Prashali Chauhan2Sandipan Bhattacherjee3Quantum Gravity and Unified Theory and Theoretical Cosmology Group, Max Planck Institute for Gravitational Physics (Albert Einstein Institute)Department of Physical Sciences, Indian Institute of Science Education and Research KolkataAshoka UniversityDepartment of Physics, Birla Institute of Technology, MesraAbstract In this work, our prime focus is to study the one to one correspondence between the conduction phenomena in electrical wires with impurity and the scattering events responsible for particle production during stochastic inflation and reheating implemented under a closed quantum mechanical system in early universe cosmology. In this connection, we also present a derivation of quantum corrected version of the Fokker–Planck equation without dissipation and its fourth order corrected analytical solution for the probability distribution profile responsible for studying the dynamical features of the particle creation events in the stochastic inflation and reheating stage of the universe. It is explicitly shown from our computation that quantum corrected Fokker–Planck equation describe the particle creation phenomena better for Dirac delta type of scatterer. In this connection, we additionally discuss Itô, Stratonovich prescription and the explicit role of finite temperature effective potential for solving the probability distribution profile. Furthermore, we extend our discussion of particle production phenomena to describe the quantum description of randomness involved in the dynamics. We also present computation to derive the expression for the measure of the stochastic non-linearity (randomness or chaos) arising in the stochastic inflation and reheating epoch of the universe, often described by Lyapunov Exponent. Apart from that, we quantify the quantum chaos arising in a closed system by a more strong measure, commonly known as Spectral Form Factor using the principles of random matrix theory (RMT). Additionally, we discuss the role of out of time order correlation function (OTOC) to describe quantum chaos in the present non-equilibrium field theoretic setup and its consequences in early universe cosmology (stochastic inflation and reheating). Finally, for completeness, we also provide a bound on the measure of quantum chaos (i.e. on Lyapunov Exponent and Spectral Form Factor) arising due to the presence of stochastic non-linear dynamical interactions into the closed quantum system of the early universe in a completely model-independent way.http://link.springer.com/article/10.1140/epjc/s10052-019-6751-2 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Sayantan Choudhury Arkaprava Mukherjee Prashali Chauhan Sandipan Bhattacherjee |
spellingShingle |
Sayantan Choudhury Arkaprava Mukherjee Prashali Chauhan Sandipan Bhattacherjee Quantum out-of-equilibrium cosmology European Physical Journal C: Particles and Fields |
author_facet |
Sayantan Choudhury Arkaprava Mukherjee Prashali Chauhan Sandipan Bhattacherjee |
author_sort |
Sayantan Choudhury |
title |
Quantum out-of-equilibrium cosmology |
title_short |
Quantum out-of-equilibrium cosmology |
title_full |
Quantum out-of-equilibrium cosmology |
title_fullStr |
Quantum out-of-equilibrium cosmology |
title_full_unstemmed |
Quantum out-of-equilibrium cosmology |
title_sort |
quantum out-of-equilibrium cosmology |
publisher |
SpringerOpen |
series |
European Physical Journal C: Particles and Fields |
issn |
1434-6044 1434-6052 |
publishDate |
2019-04-01 |
description |
Abstract In this work, our prime focus is to study the one to one correspondence between the conduction phenomena in electrical wires with impurity and the scattering events responsible for particle production during stochastic inflation and reheating implemented under a closed quantum mechanical system in early universe cosmology. In this connection, we also present a derivation of quantum corrected version of the Fokker–Planck equation without dissipation and its fourth order corrected analytical solution for the probability distribution profile responsible for studying the dynamical features of the particle creation events in the stochastic inflation and reheating stage of the universe. It is explicitly shown from our computation that quantum corrected Fokker–Planck equation describe the particle creation phenomena better for Dirac delta type of scatterer. In this connection, we additionally discuss Itô, Stratonovich prescription and the explicit role of finite temperature effective potential for solving the probability distribution profile. Furthermore, we extend our discussion of particle production phenomena to describe the quantum description of randomness involved in the dynamics. We also present computation to derive the expression for the measure of the stochastic non-linearity (randomness or chaos) arising in the stochastic inflation and reheating epoch of the universe, often described by Lyapunov Exponent. Apart from that, we quantify the quantum chaos arising in a closed system by a more strong measure, commonly known as Spectral Form Factor using the principles of random matrix theory (RMT). Additionally, we discuss the role of out of time order correlation function (OTOC) to describe quantum chaos in the present non-equilibrium field theoretic setup and its consequences in early universe cosmology (stochastic inflation and reheating). Finally, for completeness, we also provide a bound on the measure of quantum chaos (i.e. on Lyapunov Exponent and Spectral Form Factor) arising due to the presence of stochastic non-linear dynamical interactions into the closed quantum system of the early universe in a completely model-independent way. |
url |
http://link.springer.com/article/10.1140/epjc/s10052-019-6751-2 |
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