Results for 'quantum vacuum'

975 found
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  1.  56
    The quantum vacuum and the cosmological constant problem.Svend E. Rugh & Henrik Zinkernagel - 2002 - Studies in History and Philosophy of Science Part B: Studies in History and Philosophy of Modern Physics 33 (4):663-705.
    The cosmological constant problem arises at the intersection between general relativity and quantum field theory, and is regarded as a fundamental problem in modern physics. In this paper we describe the historical and conceptual origin of the cosmological constant problem which is intimately connected to the vacuum concept in quantum field theory. We critically discuss how the problem rests on the notion of physically real vacuum energy, and which relations between general relativity and quantum field (...)
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  2. The quantum vacuum: a scientific and philosophical concept, from electrodynamics to string theory and the geometry of the microscopic world.Luciano Boi - 2011 - Baltimore: Johns Hopkins University Press.
    Acclaimed mathematical physicist and natural philosopher Luciano Boi expounds the quantum vacuum, exploring the meaning of nothingness and its relationship with ...
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  3. Quantum vacuum friction.Paul Davies - manuscript
    The quantum vacuum may in certain circumstances be regarded as a type of fluid medium, or aether, exhibiting energy density, pressure, stress and friction. Vacuum friction may be thought of as being responsible for the spontaneous creation of particles from the vacuum state when the system is non-stationary. Examples include the expanding universe, rotating black holes, moving mirrors, atoms passing close to surfaces, and the activities of sub-cellular biosystems. The concept of vacuum friction will be (...)
     
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  4. The quantum vacuum and the cosmological constant problem.E. S. & H. Zinkernagel - 2002 - Studies in History and Philosophy of Science Part B: Studies in History and Philosophy of Modern Physics 33 (4):663-705.
    The cosmological constant problem arises at the intersection between general relativity and quantum field theory, and is regarded as a fundamental problem in modern physics. In this paper, we describe the historical and conceptual origin of the cosmological constant problem which is intimately connected to the vacuum concept in quantum field theory. We critically discuss how the problem rests on the notion of physically real vacuum energy, and which relations between general relativity and quantum field (...)
     
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  5. Quantum vacuum noise in physics and cosmology.Paul Davies - manuscript
    The concept of the vacuum in quantum field theory is a subtle one. Vacuum states have a rich and complex set of properties that produce distinctive, though usually exceedingly small, physical effects. Quantum vacuum noise is familiar in optical and electronic devices, but in this paper I wish to consider extending the discussion to systems in which gravitation, or large accelerations, are important. This leads to the prediction of vacuum friction: The quantum (...) can act in a manner reminiscent of a viscous fluid. One result is that rapidly changing gravitational fields can create particles from the vacuum, and in turn the backreaction on the gravitational dynamics operates like a damping force. I consider such effects in early universe cosmology and the theory of quantum black holes, including the possibility that the large-scale structure of the universe might be produced by quantum vacuum noise in an early inflationary phase. I also discuss the curious phenomenon that an observer who accelerates through a quantum vacuum perceives a bath of thermal radiation closely analogous to Hawking radiation from black holes, even though an inertial observer registers no particles. The effects predicted raise very deep and unresolved issues about the nature of quantum particles, the role of the observer, and the relationship between the quantum vacuum and the concepts of information and entropy. © 2001 American Institute of Physics. (shrink)
     
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  6. Quantum vacuum instability near rotating stars.P. C. W. Davies - unknown
    We discuss the Starobinskii-Unruh process for the Kerr black hole. We show how this effect is related to the theory of squeezed states. We then consider a simple model for a highly relativistic rotating star and show that the Starobinskii-Unruh effect is absent.
     
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  7. The Quantum Vacuum.Gheorghe Paraoanu - 2015 - In Iulian D. Toader, Gabriel Sandu & Ilie Pȃrvu (eds.), Romanian Studies in Philosophy of Science. Springer Verlag.
     
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  8.  54
    Gravity, Inertia, and Quantum Vacuum Zero Point Fields.James F. Woodward - 2001 - Foundations of Physics 31 (5):819-835.
    Over the past several years Haisch, Rueda, and others have made the claim that the origin of inertial reaction forces can be explained as the interaction of electrically charged elementary particles with the vacuum electromagnetic zero-point field expected on the basis of quantum field theory. After pointing out that this claim, in light of the fact that the inertial masses of the hadrons reside in the electrically chargeless, photon-like gluons that bind their constituent quarks, is untenable, the question (...)
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  9.  92
    Contrasting Classical and Quantum Vacuum States in Non-inertial Frames.Timothy H. Boyer - 2013 - Foundations of Physics 43 (8):923-947.
    Classical electron theory with classical electromagnetic zero-point radiation (stochastic electrodynamics) is the classical theory which most closely approximates quantum electrodynamics. Indeed, in inertial frames, there is a general connection between classical field theories with classical zero-point radiation and quantum field theories. However, this connection does not extend to noninertial frames where the time parameter is not a geodesic coordinate. Quantum field theory applies the canonical quantization procedure (depending on the local time coordinate) to a mirror-walled box, and, (...)
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  10. Detecting the rotating quantum vacuum.Paul Davies - manuscript
    We derive conditions for rotating particle detectors to respond in a variety of bounded spacetimes and compare the results with the folklore that particle detectors do not respond in the vacuum state appropriate to their motion. Applications involving possible violations of the second law of thermodynamics are briefly addressed.
     
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  11.  45
    A Rotating Quantum Vacuum.V. A. De Lorenci & N. F. Svaiter - 1999 - Foundations of Physics 29 (8):1233-1264.
    We investigate how a uniformly rotating frame is defined as the rest frame of an observer rotating with constant angular velocity Ω around the z axis of an inertial frame. Assuming this frame to be a Lorentz one, we second quantize a free massless scalar field in the rotating frame and obtain that creation-annihilation operators of the field are not the same as those of an inertial frame. This leads to a new vacuum state—a rotating vacuum. After this, (...)
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  12.  49
    About Dark Energy and Dark Matter in a Three-Dimensional Quantum Vacuum Model.Davide Fiscaletti - 2016 - Foundations of Physics 46 (10):1307-1340.
    A model of a three-dimensional quantum vacuum based on Planck energy density as a universal property of a granular space is suggested. The possibility to provide an unifying explanation of dark matter and dark energy as phenomena linked with the fluctuations of the three-dimensional quantum vacuum is explored. The changes and fluctuations of the quantum vacuum energy density generate a curvature of space–time similar to the curvature produced by a “dark energy” density. The formation (...)
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  13.  73
    A Gedanken Spacecraft that Operates Using the Quantum Vacuum (Dynamic Casimir Effect).G. Jordan Maclay & Robert L. Forward - 2004 - Foundations of Physics 34 (3):477-500.
    Conventional rockets are not a suitable technology for interstellar missions. Chemical rockets require a very large weight of propellant, travel very slowly compared to light speed, and require significant energy to maintain operation over periods of years. For example, the 722 kg Voyager spacecraft required 13,600 kg of propellant to launch and would take about 80,000 years to reach the nearest star, Proxima Centauri, about 4.3 light years away. There have been various attempts at developing ideas on which one might (...)
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  14.  38
    Will Small Particles Exhibit Brownian Motion in the Quantum Vacuum?Gilad Gour & L. Sriramkumar - 1999 - Foundations of Physics 29 (12):1917-1949.
    The Brownian motion of small particles interacting with a field at a finite temperature is a well-known and well-understood phenomenon. At zero temperature, even though the thermal fluctuations are absent, quantum fields still possess vacuum fluctuations. It is then interesting to ask whether a small particle that is interacting with a quantum field will exhibit Brownian motion when the quantum field is assumed to be in the vacuum state. In this paper, we study the cases (...)
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  15. Structurally dynamic cellular networks as models for planck-scale physics and the quantum vacuum.Manfred Requardt - 2016 - In Ignazio Licata (ed.), Beyond peaceful coexistence: the emergence of space, time and quantum. London: Imperial College Press.
     
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  16.  63
    Agency and the theory of quantum vacuum interaction.Raymond Trevor Bradley - 2000 - World Futures 55 (3):227-275.
  17.  23
    Fast Vacuum Fluctuations and the Emergence of Quantum Mechanics.Gerard ’T. Hooft - 2021 - Foundations of Physics 51 (3):1-24.
    Fast moving classical variables can generate quantum mechanical behavior. We demonstrate how this can happen in a model. The key point is that in classically evolving systems one can still define a conserved quantum energy. For the fast variables, the energy levels are far separated, such that one may assume these variables to stay in their ground state. This forces them to be entangled, so that, consequently, the slow variables are entangled as well. The fast variables could be (...)
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  18. The Vacuum in Relativistic Quantum Field Theory.Michael Redhead - 1994 - PSA: Proceedings of the Biennial Meeting of the Philosophy of Science Association 1994:77 - 87.
    The status of the vacuum in relativistic quantum field theory is examined. A sharp distinction arises between the global vacuum and the local vacuum. The concept of local number density is critically assessed. The global vacuum state implies fluctuations for all local observables. Correlations between such fluctuations in space-like separated regions of space-time are discussed and the existence of correlations which are maximal in a certain sense is remarked on, independently of how far apart those (...)
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  19.  76
    A Review of “Demystifying the Akasha: Consciousness and the Quantum Vacuum”. [REVIEW]Gyorgyi Szabo - 2012 - World Futures 68 (1):75 - 76.
  20.  34
    A Review of “Demystifying the Akasha: Consciousness and the Quantum Vacuum” Abraham, Ralph and Sisir Roy. Rhineback, New York: Epigraph Books, 2010 (x+ 211 pp., $16.95, ISBN 078-0-9826441-5-7). [REVIEW]Gyorgyi Szabo - 2012 - World Futures 68 (1):75-76.
  21.  41
    What Can the Quantum Liquid Say on the Brane Black Hole, the Entropy of an Extremal Black Hole, and the Vacuum Energy?G. E. Volovik - 2003 - Foundations of Physics 33 (2):349-368.
    Using quantum liquids one can simulate the behavior of the quantum vacuum in the presence of the event horizon. The condensed matter analogs demonstrate that in most cases the quantum vacuum resists formation of the horizon, and even if the horizon is formed different types of the vacuum instability develop, which are faster than the process of Hawking radiation. Nevertheless, it is possible to create the horizon on the quantum-liquid analog of the brane, (...)
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  22.  88
    Vacuum Polarization in Self-Field Quantum Electrodynamics.I. Açikgöz & N. Ünal - 1998 - Foundations of Physics 28 (5):815-828.
    We have evaluated analytically the vacuum polarization in a Coulomb field using the relativistic Dirac-Coulomb wave functions by a new method. The result is made finite by an appropriate choice of contour integrations and gives the standard result in the lowest order of iteration. We used the formalism of self-field quantum electrodynamics in the evaluation of the vacuum polarization which needs neither field quantization nor renormalization. There are no infrared or ultraviolet divergences.
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  23.  35
    Hydrodynamics of the Physical Vacuum: I. Scalar Quantum Sector.Valeriy I. Sbitnev - 2016 - Foundations of Physics 46 (5):606-619.
    Physical vacuum is a special superfluid medium. Its motion is described by the Navier–Stokes equation having two slightly modified terms that relate to internal forces. They are the pressure gradient and the dissipation force because of viscosity. The modifications are as follows: the pressure gradient contains an added term describing the pressure multiplied by the entropy gradient; time-averaged viscosity is zero, but its variance is not zero. Owing to these modifications, the Navier–Stokes equation can be reduced to the Schrödinger (...)
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  24. On Nonlinear Quantum Mechanics, Noncommutative Phase Spaces, Fractal-Scale Calculus and Vacuum Energy.Carlos Castro - 2010 - Foundations of Physics 40 (11):1712-1730.
    A (to our knowledge) novel Generalized Nonlinear Schrödinger equation based on the modifications of Nottale-Cresson’s fractal-scale calculus and resulting from the noncommutativity of the phase space coordinates is explicitly derived. The modifications to the ground state energy of a harmonic oscillator yields the observed value of the vacuum energy density. In the concluding remarks we discuss how nonlinear and nonlocal QM wave equations arise naturally from this fractal-scale calculus formalism which may have a key role in the final formulation (...)
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  25.  87
    Vacuum Concepts, Potentia, and the Quantum Field Theoretic Vacuum Explained for All.Paul Teller - 1993 - Midwest Studies in Philosophy 18 (1):332-342.
  26.  9
    Role of the Electromagnetic Vacuum in the Transition from Classical to Quantum Mechanics.Luis de la Peña & Ana María Cetto - 2022 - Foundations of Physics 52 (4):1-17.
    We revisit the nonrelativistic problem of a bound, charged particle subject to the random zero-point radiation field, with the purpose of revealing the mechanism that takes it from the initially classical description to the final quantum-mechanical one. The combined effect of the zpf and the radiation reaction force results, after a characteristic time lapse, in the loss of the initial conditions and the concomitant irreversible transition of the dynamics to a stationary regime controlled by the field. In this regime, (...)
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  27.  16
    Two comments on the vacuum in algebraic quantum field theory.Miklós Rédei - 2002 - In Meinard Kuhlmann, Holger Lyre & Andrew Wayne (eds.), Ontological Aspects of Quantum Field Theory. Singapore: World Scientific.
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  28. A Case for an Empirically Demonstrable Notion of the Vacuum in Quantum Electrodynamics Independent of Dynamical Fluctuations.Mario Bacelar Valente - 2011 - Journal for General Philosophy of Science / Zeitschrift für Allgemeine Wissenschaftstheorie 42 (2):241-261.
    A re-evaluation of the notion of vacuum in quantum electrodynamics is presented, focusing on the vacuum of the quantized electromagnetic field. In contrast to the ‘nothingness’ associated to the idea of classical vacuum, subtle aspects are found in relation to the vacuum of the quantized electromagnetic field both at theoretical and experimental levels. These are not the usually called vacuum effects. The view defended here is that the so-called vacuum effects are not due (...)
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  29.  13
    Local Model of Entangled Photon Experiments Compatible with Quantum Predictions Based on the Reality of the Vacuum Fields.Emilio Santos - 2020 - Foundations of Physics 50 (11):1587-1607.
    Arguments are provided for the reality of the quantum vacuum fields. A polarization correlation experiment with two maximally entangled photons created by spontaneous parametric down-conversion is studied in the Weyl–Wigner formalism, that reproduces the quantum predictions. An interpretation is proposed in terms of stochastic processes assuming that the quantum vacuum fields are real. This proves that local realism is compatible with a violation of Bell inequalities, thus rebutting the claim that it has been refuted by (...)
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  30.  76
    On the Possibility That the Present Quantum State of the Universe is the Vacuum.David Z. Albert - 1988 - PSA: Proceedings of the Biennial Meeting of the Philosophy of Science Association 1988:127 - 133.
    It is inquired how much an observer can ascertain of the quantum state of a system of which he and his measuring apparatus form a part; how much, for example, observers like ourselves can ascertain of the quantum state of the Universe. It turns out that no practicable experiment (and: perhaps, no experiment whatever) can establish that that state is not the vacuum. Some of the implications of this curious result are discussed.
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  31.  40
    Vacuum Genesis oraz spontaniczne powstanie wszechświata z niczego a klasyczna koncepcja przyczynowości oraz stworzenia ex nihilo.Mariusz Tabaczek - 2019 - Scientia et Fides 7 (1):127-162.
    Vacuum Genesis and Spontaneous Emergence of the Universe from Nothing in Reference to the Classical Notion of Causality and Creation ex nihilo The article discousses philosophical and theological reflections inspired by the cosmological model of the origin of the universe from quantum vacuum through quantum tunneling and the model presented by Hartle and Hawking. In the context of the thesis about the possibility of cosmogenesis ex nihilo without the need of God the creator, the question is (...)
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  32.  79
    A Tentative Expression of the Károlyházy Uncertainty of the Space-Time Structure Through Vacuum Spreads in Quantum Gravity.Andor Frenkel - 2002 - Foundations of Physics 32 (5):751-771.
    In the existing expositions of the Károlyházy model, quantum mechanical uncertainties are mimicked by classical spreads. It is shown how to express those uncertainties through entities of the future unified theory of general relativity and quantum theory.
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  33. Inequivalent Vacuum States and Rindler Particles.Robert Weingard & Barry Ward - 1998 - In Edgard Gunzig & Simon Diner (eds.), Le Vide: Univers du Tout et du Rien. Bruxelles: Revue de l'Université de Bruxelles. pp. 241-255.
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  34. The physical significance of the vacuum state of a quantum field.Dennis W. Sciama - 1991 - In Simon Saunders & Harvey R. Brown (eds.), The Philosophy of Vacuum. Oxford University Press. pp. 137--158.
     
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  35.  30
    On Vacuum Fluctuations and Particle Masses.M. D. Pollock - 2012 - Foundations of Physics 42 (10):1300-1328.
    The idea that the mass m of an elementary particle is explained in the semi-classical approximation by quantum-mechanical zero-point vacuum fluctuations has been applied previously to spin-1/2 fermions to yield a real and positive constant value for m, expressed through the spinorial connection Γ i in the curved-space Dirac equation for the wave function ψ due to Fock. This conjecture is extended here to bosonic particles of spin 0 and spin 1, starting from the basic assumption that all (...)
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  36.  6
    The quantum particle illusion: conceptual quantum mechanics.Gerald E. Marsh - 2022 - New Jersey: World Scientific.
    Problems with the conceptual foundations of quantum mechanics date back to attempts by Max Born, Niels Bohr, Werner Heisenberg, as well as many others in the 1920s to continue to employ the classical concept of a particle in the context of the quantum world. The experimental observations at the time and the assumption that the classical concept of a particle was to be preserved have led to an enormous literature on the foundations of quantum mechanics and a (...)
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  37. The Philosophy of Vacuum.Simon Saunders & Harvey R. Brown (eds.) - 1991 - Oxford University Press.
    The vacuum is fast emerging as the central structure of modern physics. This collection brings together philosophically-minded specialists who engage these issues in the context of classical gravity, quantum electrodynamics, and the grand unification program. The vacuum emerges as the synthesis of concepts of space, time, and matter; in the context of relativity and the quantum this new synthesis represents a structure of the most intricate and novel complexity. This book is a work in modern metaphysics, (...)
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  38.  58
    Vacuum Energy as the Origin of the Gravitational Constant.Durmuş A. Demir - 2009 - Foundations of Physics 39 (12):1407-1425.
    We develop a geometro-dynamical approach to the cosmological constant problem (CCP) by invoking a geometry induced by the energy-momentum tensor of vacuum, matter and radiation. The construction, which utilizes the dual role of the metric tensor that it structures both the spacetime manifold and energy-momentum tensor of the vacuum, gives rise to a framework in which the vacuum energy induced by matter and radiation, instead of gravitating, facilitates the generation of the gravitational constant. The non-vacuum sources (...)
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  39.  18
    Discovery Context of Ideas of Origin of the Universe from Vacuum Quantum Fluctuation.M. Szydlowski & J. Golbiak - 2007 - Zagadnienia Naukoznawstwa 43 (3-4):369-384.
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  40.  16
    Regularizing (Away) Vacuum Energy.Adam Koberinski - 2021 - Foundations of Physics 51 (1):1-22.
    In this paper I formulate Minimal Requirements for Candidate Predictions in quantum field theories, inspired by viewing the standard model as an effective field theory. I then survey standard effective field theory regularization procedures, to see if the vacuum expectation value of energy density ) is a quantity that meets these requirements. The verdict is negative, leading to the conclusion that \ is not a physically significant quantity in the standard model. Rigorous extensions of flat space quantum (...)
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  41. The Vacuum as Ether in the Last Century.M. Barone - 2004 - Foundations of Physics 34 (12):1973-1982.
    In this paper we review the evolution of the concept of “ vacuum ” according to different theories formulated in the last century, like Quantum Mechanics, Quantum Electrodynamics, Quantum Chromodynamics in Particle Physics and Cosmology. In all these theories a metastable vacuum state is considered which transforms from one state to another according to the energy taken into consideration. It is a “fluid” made up by matter and radiation present in the whole Universe, which may (...)
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  42.  46
    The Vacuum Electromagnetic Fields and the Schrödinger Equation.A. J. Faria, H. M. França, G. G. Gomes & R. C. Sponchiado - 2007 - Foundations of Physics 37 (8):1296-1305.
    We consider the simple case of a nonrelativistic charged harmonic oscillator in one dimension, to investigate how to take into account the radiation reaction and vacuum fluctuation forces within the Schrödinger equation. The effects of both zero-point and thermal classical electromagnetic vacuum fields, characteristic of stochastic electrodynamics, are separately considered. Our study confirms that the zero-point electromagnetic fluctuations are dynamically related to the momentum operator p=−i ℏ ∂/∂ x used in the Schrödinger equation.
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  43.  50
    Vacuum structures in Hamiltonian light-front dynamics.F. Coester & W. Polyzou - 1994 - Foundations of Physics 24 (3):387-400.
    Hamiltonian light-front dynamics of quantum fields may provide a useful approach to systematic nonperturbative approximations to quantum field theories. We investigate inequivalent Hilbert-space representations of the light-front field algebra in which the stability group of the light front is implemented by unitary transformations. The Hilbert space representation of states is generated by the operator algebra from the vacuum state. There is a large class of vacuum states besides the Fock vacuum which meet all the invariance (...)
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  44.  12
    Preludes to dark energy: zero-point energy and vacuum speculations.Helge Kragh - 2012 - Archive for History of Exact Sciences 66 (3):199-240.
    According to modern physics and cosmology, the universe expands at an increasing rate as the result of a “dark energy” that characterizes empty space. Although dark energy is a modern concept, some elements in it can be traced back to the early part of the twentieth century. I examine the origin of the idea of zero-point energy, and in particular how it appeared in a cosmological context in a hypothesis proposed by Walther Nernst in 1916. The hypothesis of a zero-point (...)
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  45.  12
    Polarization of Vacuum Fluctuations: Source of the Vacuum Permittivity and Speed of Light.G. B. Mainland & Bernard Mulligan - 2020 - Foundations of Physics 50 (5):457-480.
    There are two types of fluctuations in the quantum vacuum: type 1 vacuum fluctuations are on shell and can interact with matter in specific, limited ways that have observable consequences; type 2 vacuum fluctuations are off shell and cannot interact with matter. A photon will polarize a type 1, bound, charged lepton–antilepton vacuum fluctuation in much the same manner that it would polarize a dielectric, suggesting the method used here for calculating the permittivity $$\epsilon _{0}$$ϵ0 (...)
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  46.  25
    Hydrodynamics of the Physical Vacuum: II. Vorticity Dynamics.Valeriy I. Sbitnev - 2016 - Foundations of Physics 46 (10):1238-1252.
    Physical vacuum is a special superfluid medium populated by enormous amount of virtual particle-antiparticle pairs. Its motion is described by the modified Navier–Stokes equation: the pressure gradient divided by the mass density is replaced by the gradient from the quantum potential; time-averaged the viscosity vanishes, but its variance is not zero. Vortex structures arising in this medium show infinitely long lifetime owing to zero average viscosity. The nonzero variance is conditioned by exchanging the vortex energy with zero-point (...) fluctuations. The vortex has a non-zero core where the orbital speed vanishes. The speed reaches a maximal value on the core wall and further it decreases monotonically. The vortex trembles around some average value and possesses by infinite life time. The vortex ball resulting from topological transformation of the vortex ring is considered as a model of a particle with spin. Anomalous magnetic moment of electron is computed. (shrink)
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  47.  27
    Nonrelativistic Quantum Mechanics with Fundamental Environment.Ashot S. Gevorkyan - 2011 - Foundations of Physics 41 (3):509-515.
    Spontaneous transitions between bound states of an atomic system, “Lamb Shift” of energy levels and many other phenomena in real nonrelativistic quantum systems are connected within the influence of the quantum vacuum fluctuations (fundamental environment (FE)) which are impossible to consider in the limits of standard quantum-mechanical approaches. The joint system “quantum system (QS) + FE” is described in the framework of the stochastic differential equation (SDE) of Langevin-Schrödinger (L-Sch) type, and is defined on the (...)
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  48.  55
    Quantum Mechanics as an Emergent Property of Ergodic Systems Embedded in the Zero-point Radiation Field.L. de la Peña, A. Valdés-Hernández & A. M. Cetto - 2009 - Foundations of Physics 39 (11):1240-1272.
    The present paper reveals (non-relativistic) quantum mechanics as an emergent property of otherwise classical ergodic systems embedded in a stochastic vacuum or zero-point radiation field (zpf). This result provides a theoretical basis for understanding recent numerical experiments in which a statistical analysis of an atomic electron interacting with the zpf furnishes the quantum distribution for the ground state of the H atom. The action of the zpf on matter is essential within the present approach, but it is (...)
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  49.  28
    The Quantum Field Theory (QFT) Dual Paradigm in Fundamental Physics and the Semantic Information Content and Measure in Cognitive Sciences.Gianfranco Basti - 2017 - In Gordana Dodig-Crnkovic & Raffaela Giovagnoli (eds.), Representation of Reality: Humans, Other Living Organism and Intelligent Machines. Heidelberg: Springer.
    In this paper we explore the possibility of giving a justification of the “semantic information” content and measure, in the framework of the recent coalgebraic approach to quantum systems and quantum computation, extended to QFT systems. In QFT, indeed, any quantum system has to be considered as an “open” system, because it is always interacting with the background fluctuations of the quantum vacuum. Namely, the Hamiltonian in QFT always includes the quantum system and its (...)
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  50.  88
    Quantum Gravity on a Quantum Computer?Achim Kempf - 2014 - Foundations of Physics 44 (5):472-482.
    EPR-type measurements on spatially separated entangled spin qubits allow one, in principle, to detect curvature. Also the entanglement of the vacuum state is affected by curvature. Here, we ask if the curvature of spacetime can be expressed entirely in terms of the spatial entanglement structure of the vacuum. This would open up the prospect that quantum gravity could be simulated on a quantum computer and that quantum information techniques could be fully employed in the study (...)
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