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A Holographic Principle for Non-Relativistic Quantum Mechanics
by
Thompson, Russell B.
in
Atoms & subatomic particles
/ Density functional theory
/ Elementary Particles
/ Field theory
/ High temperature
/ Isomorphism
/ Mathematical and Computational Physics
/ Mathematics
/ Physics
/ Physics and Astronomy
/ Polymers
/ Quantum entanglement
/ Quantum Field Theory
/ Quantum mechanics
/ Quantum phenomena
/ Quantum Physics
/ Relativistic effects
/ Relativity
/ Self consistent fields
/ Spacetime
/ Statistical mechanics
/ Theoretical
/ Thermal energy
/ Uncertainty principles
2023
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A Holographic Principle for Non-Relativistic Quantum Mechanics
by
Thompson, Russell B.
in
Atoms & subatomic particles
/ Density functional theory
/ Elementary Particles
/ Field theory
/ High temperature
/ Isomorphism
/ Mathematical and Computational Physics
/ Mathematics
/ Physics
/ Physics and Astronomy
/ Polymers
/ Quantum entanglement
/ Quantum Field Theory
/ Quantum mechanics
/ Quantum phenomena
/ Quantum Physics
/ Relativistic effects
/ Relativity
/ Self consistent fields
/ Spacetime
/ Statistical mechanics
/ Theoretical
/ Thermal energy
/ Uncertainty principles
2023
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Do you wish to request the book?
A Holographic Principle for Non-Relativistic Quantum Mechanics
by
Thompson, Russell B.
in
Atoms & subatomic particles
/ Density functional theory
/ Elementary Particles
/ Field theory
/ High temperature
/ Isomorphism
/ Mathematical and Computational Physics
/ Mathematics
/ Physics
/ Physics and Astronomy
/ Polymers
/ Quantum entanglement
/ Quantum Field Theory
/ Quantum mechanics
/ Quantum phenomena
/ Quantum Physics
/ Relativistic effects
/ Relativity
/ Self consistent fields
/ Spacetime
/ Statistical mechanics
/ Theoretical
/ Thermal energy
/ Uncertainty principles
2023
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A Holographic Principle for Non-Relativistic Quantum Mechanics
Journal Article
A Holographic Principle for Non-Relativistic Quantum Mechanics
2023
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Overview
The quantum-classical isomorphism for self-consistent field theory, which allows quantum particles in space-time to be represented as classical one-dimensional threads embedded in a five dimensional thermal-space-time, is summarized and used to explain a selection of quantum phenomena. Introduced by Feynman, and used for modern quantum simulations, the isomorphism, when phrased in a field-theoretic way, has been shown to be the same as quantum density functional theory, the theorems of which guarantee equivalent predictions with non-relativistic quantum mechanics. If the Feynman dimension is considered to be real, there is a duality between classical threads in five dimensions and quantum particles in four dimensions. Using the 5D picture, intuitive explanations are given for quantum phenomena including the uncertainty principle, tunnelling, geometric phase, and interference effects. Advantages of the 5D picture are presented, which include fewer postulates, no measurement problem, and the need for only classical concepts in the higher dimensional space. Limitations of the approach such as the interpretation of entanglement and spin are discussed.
Publisher
Springer US,Springer Nature B.V
Subject
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