The fundamental obscurity in quantum mechanics. Could the problem be considered universal?
arXiv:1012.4413
Abstract
The contemporary controversy about the fundamental obscurity in quantum mechanics keeps on the old one about the aim of science, which was between the founders of the quantum theory. The orthodox quantum mechanics could be created only at the cost of renunciation of reality as the aim of natural science. The description only of phenomena, i.e. results of observation, should not be universal if no one believes that these phenomena are manifestation of a unique reality. Such belief concerning quantum mechanics is quite unacceptable because of irremediably conflict with special relativity. Nevertheless the quantum mechanics was developed and apprehended by most physicists as a universal theory of a quantum world. This fundamental discrepancy between the essence of the orthodox quantum mechanics and its history of development and studying has resulted both to an illusion about the aim of its description among most physicists and to the consideration of its fundamental obscurity as a universal problem among experts in quantum foundation. The aim of this paper is to show that quantum phenomena can not be described universally. It is indicated that rather the Schrodinger's than Born's interpretation of the wave function is valid for description of many quantum phenomena. The fundamental obscurity with which we are faced at the description, for example, macroscopic quantum phenomena differs fundamentally from the one with which the founders of the quantum theory were faced on atomic level.
22 pages, 1 figure, submitted to Found. Phys
References in corpus (19)
- A Kapitza-Dirac-Talbot-Lau interferometer for highly polarizable molecules
- The Free-Will Postulate in Quantum Mechanics
- A macroscopic test of the Aharonov-Bohm effect
- Fluctuation Superconductivity in Mesoscopic Aluminum Rings
- Paradox in Wave-Particle Duality
- Quantum mechanics: Myths and facts
- Parametric control of a superconducting flux qubit
- Leggett-Garg inequalities and the geometry of the cut polytope
- Phase-Coherent Dynamics of a Superconducting Flux Qubit with Capacitive-Bias Readout
- Do superconductors violate Lenz's law? Body rotation under field cooling and theoretical implications
- Bohm's quantum potential and quantum force in superconductor
- Single-Shot Readout of Macroscopic Quantum Superposition State in a Superconducting Flux Qubit
- Quantum limits to the second law and breach of symmetry
- Flux-qubit and the law of angular momentum conservation
- It is needed to shout "wake up"
- On the absence of a measurement problem in quantum computer science
- Comment on "Coherent Detection of Electron Dephasing'' [arXiv:0909.2197]
- Could the EPR correlation be in superconducting structures? Possibility of experimental verification
- Superposition of flux-qubit states and the law of angular momentum conservation