Megascopic Quantum Phenomena. A Critical Study of Physical Interpretations
Michal Svr\v{c}ek

TL;DR
This paper critically reexamines quantum phenomena at a megascopic scale, proposing new interpretations and resolving inconsistencies in current quantum theory, with implications for understanding symmetry breaking and quantum transitions.
Contribution
It introduces a new covariance framework linking internal and external degrees of freedom and offers an independent proof of the Goldstone theorem in quantum field formulations of matter.
Findings
Introduction of new quasiparticles: rotons and translons.
Revised understanding of symmetry breaking and Goldstone modes.
Implications for megascopic quantum phenomena like superconductivity and chemical reactions.
Abstract
A megascopic revalidation is offered providing responses and resolutions of current inconsistencies and existing contradictions in present-day quantum theory. As the core of this study we present an independent proof of the Goldstone theorem for a quantum field formulation of molecules and solids. Along with phonons two types of new quasiparticles appear: rotons and translons. In full analogy with Lorentz covariance, combining space and time coordinates, a new covariance is necessary, binding together the internal and external degrees of freedom, without explicitly separating the centre-of-mass, which normally applies in both classical and quantum formulations. The generally accepted view regarding the lack of a simple correspondence between the Goldstone modes and broken symmetries, has significant consequences: an ambiguous BCS theory as well as a subsequent Higgs mechanism. The…
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Taxonomy
TopicsQuantum Mechanics and Applications · Biofield Effects and Biophysics · Advanced Mathematical Theories and Applications
