Quantum Imprints on CMBR

Quantum cosmology aims to develop a quantum theory of the universe, attempting to answer open questions of physical cosmology, mainly related to the early epochs of the universe. Such a theory aims to unite relativity theory and quantum theory. Here, the whole universe is treated as a quantum mechan...

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書誌詳細
出版年:Universe
第一著者: Shreya Banerjee
フォーマット: 論文
言語:英語
出版事項: MDPI AG 2023-09-01
主題:
オンライン・アクセス:https://www.mdpi.com/2218-1997/9/9/405
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author Shreya Banerjee
author_facet Shreya Banerjee
author_sort Shreya Banerjee
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container_title Universe
description Quantum cosmology aims to develop a quantum theory of the universe, attempting to answer open questions of physical cosmology, mainly related to the early epochs of the universe. Such a theory aims to unite relativity theory and quantum theory. Here, the whole universe is treated as a quantum mechanical system and is described by a wave function rather than by a classical spacetime. In this review, I shall describe the mathematical structure and primary formulations that form the backbone of quantum cosmology. We know that over a period of time, several approaches were developed to form a quantum theory of gravity. However, in order to decide which approach is the best, we need testable predictions, effects that can be observed in cosmic microwave background radiation (CMBR). I shall discuss the methodologies for generating quantum gravitational corrections to inflationary background leading to testable predictions. Another aspect of finding quantum imprints on CMBR results through the application of resolution of the ‘quantum measurement problem’ to early universe physics. In this article, I shall also discuss two such promising models explaining the classicalization of inflationary perturbation and are capable of leaving distinct observational imprints on the observables.
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spelling doaj-art-d2ae9500a62446ffbc3f3ea9bc4e54572025-08-20T01:08:10ZengMDPI AGUniverse2218-19972023-09-019940510.3390/universe9090405Quantum Imprints on CMBRShreya Banerjee0Institute for Quantum Gravity, FAU Erlangen-Nuremberg, Staudtstr. 7, 91058 Erlangen, GermanyQuantum cosmology aims to develop a quantum theory of the universe, attempting to answer open questions of physical cosmology, mainly related to the early epochs of the universe. Such a theory aims to unite relativity theory and quantum theory. Here, the whole universe is treated as a quantum mechanical system and is described by a wave function rather than by a classical spacetime. In this review, I shall describe the mathematical structure and primary formulations that form the backbone of quantum cosmology. We know that over a period of time, several approaches were developed to form a quantum theory of gravity. However, in order to decide which approach is the best, we need testable predictions, effects that can be observed in cosmic microwave background radiation (CMBR). I shall discuss the methodologies for generating quantum gravitational corrections to inflationary background leading to testable predictions. Another aspect of finding quantum imprints on CMBR results through the application of resolution of the ‘quantum measurement problem’ to early universe physics. In this article, I shall also discuss two such promising models explaining the classicalization of inflationary perturbation and are capable of leaving distinct observational imprints on the observables.https://www.mdpi.com/2218-1997/9/9/405quantum cosmologyinflationcosmic microwave backgroundWheeler–DeWitt
spellingShingle Shreya Banerjee
Quantum Imprints on CMBR
quantum cosmology
inflation
cosmic microwave background
Wheeler–DeWitt
title Quantum Imprints on CMBR
title_full Quantum Imprints on CMBR
title_fullStr Quantum Imprints on CMBR
title_full_unstemmed Quantum Imprints on CMBR
title_short Quantum Imprints on CMBR
title_sort quantum imprints on cmbr
topic quantum cosmology
inflation
cosmic microwave background
Wheeler–DeWitt
url https://www.mdpi.com/2218-1997/9/9/405
work_keys_str_mv AT shreyabanerjee quantumimprintsoncmbr