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The theory of everything: quantum and relativity is everywhere : a Fermat Universe

The book unifies quantum theory and the general theory of relativity. As an unsolved problem for about 100 years and influencing so many fields, this is probably of some importance to the scientific community. Examples like Higgs field, limit to classical Dirac and Klein–Gordon or Schrödinger cases,...

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Autor principal: Schwarzer, Norbert
Lenguaje:eng
Publicado: Jenny Stanford 2020
Materias:
Acceso en línea:http://cds.cern.ch/record/2298297
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author Schwarzer, Norbert
author_facet Schwarzer, Norbert
author_sort Schwarzer, Norbert
collection CERN
description The book unifies quantum theory and the general theory of relativity. As an unsolved problem for about 100 years and influencing so many fields, this is probably of some importance to the scientific community. Examples like Higgs field, limit to classical Dirac and Klein–Gordon or Schrödinger cases, quantized Schwarzschild, Kerr, Kerr–Newman objects, and the photon are considered for illustration. An interesting explanation for the asymmetry of matter and antimatter in the early universe was found while quantizing the Schwarzschild metric. Along the way, the methods outlined in the book are also used to tackle the problem of the proof of Fermat’s last theorem, as there is a connection between quantum theory and basic mathematical laws of integers. The book shows that the proof of Fermat’s last theorem can be brought down to a few lines by applying new quantum theoretical methods. Because such proof was sought for over 370 years, this book is of definite interest to mathematicians.
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spelling cern-22982972021-04-21T18:57:15Zhttp://cds.cern.ch/record/2298297engSchwarzer, NorbertThe theory of everything: quantum and relativity is everywhere : a Fermat UniverseParticle Physics - TheoryThe book unifies quantum theory and the general theory of relativity. As an unsolved problem for about 100 years and influencing so many fields, this is probably of some importance to the scientific community. Examples like Higgs field, limit to classical Dirac and Klein–Gordon or Schrödinger cases, quantized Schwarzschild, Kerr, Kerr–Newman objects, and the photon are considered for illustration. An interesting explanation for the asymmetry of matter and antimatter in the early universe was found while quantizing the Schwarzschild metric. Along the way, the methods outlined in the book are also used to tackle the problem of the proof of Fermat’s last theorem, as there is a connection between quantum theory and basic mathematical laws of integers. The book shows that the proof of Fermat’s last theorem can be brought down to a few lines by applying new quantum theoretical methods. Because such proof was sought for over 370 years, this book is of definite interest to mathematicians.Jenny Stanfordoai:cds.cern.ch:22982972020
spellingShingle Particle Physics - Theory
Schwarzer, Norbert
The theory of everything: quantum and relativity is everywhere : a Fermat Universe
title The theory of everything: quantum and relativity is everywhere : a Fermat Universe
title_full The theory of everything: quantum and relativity is everywhere : a Fermat Universe
title_fullStr The theory of everything: quantum and relativity is everywhere : a Fermat Universe
title_full_unstemmed The theory of everything: quantum and relativity is everywhere : a Fermat Universe
title_short The theory of everything: quantum and relativity is everywhere : a Fermat Universe
title_sort theory of everything: quantum and relativity is everywhere : a fermat universe
topic Particle Physics - Theory
url http://cds.cern.ch/record/2298297
work_keys_str_mv AT schwarzernorbert thetheoryofeverythingquantumandrelativityiseverywhereafermatuniverse
AT schwarzernorbert theoryofeverythingquantumandrelativityiseverywhereafermatuniverse