Results for 'Quantum phenomena'

961 found
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  1. Can classical structures explain quantum phenomena?Alisa Bokulich - 2008 - British Journal for the Philosophy of Science 59 (2):217-235.
    In semiclassical mechanics one finds explanations of quantum phenomena that appeal to classical structures. These explanations are prima facie problematic insofar as the classical structures they appeal to do not exist. Here I defend the view that fictional structures can be genuinely explanatory by introducing a model-based account of scientific explanation. Applying this framework to the semiclassical phenomenon of wavefunction scarring, I argue that not only can the fictional classical trajectories explain certain aspects of this quantum phenomenon, (...)
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  2. Understanding quantum phenomena.Soazig Le Bihan - 2008 - Dissertation, University of Nancy 2 - Henri Poincaré, and University of Bielefeld
    It so happens that classical physical theories can be interpreted as a representation of local interactions between systems with determinate properties. Orthodox quantum mechanics, which is one of our most experimentally well-confirmed theories, is notoriously resistant to being interpreted in terms of the above framework. Bell-type theorems and Bell-type experiments have made such an interpretation impossible. In the early sixties, John Bell demonstrated that any theory that represents its domain in terms of the above framework satisfies a set of (...)
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  3. A Unified Explanation of Quantum Phenomena? The Case for the Peer‐to‐Peer Simulation Hypothesis as an Interdisciplinary Research Program.Marcus Arvan - 2014 - Philosophical Forum 45 (4):433-446.
    In my 2013 article, “A New Theory of Free Will”, I argued that several serious hypotheses in philosophy and modern physics jointly entail that our reality is structurally identical to a peer-to-peer (P2P) networked computer simulation. The present paper outlines how quantum phenomena emerge naturally from the computational structure of a P2P simulation. §1 explains the P2P Hypothesis. §2 then sketches how the structure of any P2P simulation realizes quantum superposition and wave-function collapse (§2.1.), quantum indeterminacy (...)
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  4.  73
    Quantum Phenomena in a Classical Model.Vieri Benci - 1999 - Foundations of Physics 29 (1):1-28.
    This work is part of a program which has the aim to investigate which phenomena can be explained by nonlinear effects in classical mechanics and which ones require the new axioms of quantum mechanics. In this paper, we construct a nonlinear field equation which admits soliton solutions. These solitons exibit a dynamics which is similar to that of quantum particles.
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  5. Evidence of Macroscopic Quantum Phenomena and Conscious Reality Selection.Cynthia Sue Larson - 2014 - Cosmos and History 10 (1):34-47.
    The purpose of this paper is to present an overview of emergent examples of macroscopic quantum phenomena. While quantum theory asserts that such quantum behaviors as superposition, entanglement, and coherence are possible for all objects, assumptions that quantum processes operate exclusively within the quantum realm have contributed to on-going bias toward presumed primacy of classical physics in the macroscopic realm. Non-trivial quantum macroscopic effects are now recognized in the fields of biology, quantum (...)
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  6.  53
    Understanding quantum phenomena and quantum theories.Armond Duwell - 2020 - Studies in History and Philosophy of Science Part B: Studies in History and Philosophy of Modern Physics 72:278-291.
  7.  5
    Advances in quantum phenomena.Enrico G. Beltrametti & Jean Marc Lévy-Leblond (eds.) - 1995 - New York: Plenum Press.
    Papers from the 1994 meeting represent a broad review of contemporary experimental work on quantum phenomena, emphasizing state-of-the-art experimental science. Useful as an introductory manual for young researchers, the volume addresses topics that include: experiments with single and ultracold ato.
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  8.  34
    Ontological constraints and understanding quantum phenomena.Henry J. Folse - 1996 - Dialectica 50 (2):121-136.
    The question of whether an «understanding» of quantum phenomena is possible, as raised by Cushing , is considered in terms of a possible revision of basic ontological assumptions which would make rational the pursuit of such an understanding. It is argued that the quantum theory imposes new constraints on ontology which force us to revise classical presuppositions about attributing properties to physical systems, about locality and individuality, and about interaction and space‐like separability. Through such ontological revision, it (...)
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  9.  24
    An alternative approach to quantum phenomena.J. W. G. Wignall - 1988 - Foundations of Physics 18 (6):591-624.
    This paper outlines the qualitative foundations of a “quasiclassical” theory in which particles are pictured as spatially extended periodic excitations of a universal background field, interacting with each other via nonlinearity in the equations of motion for that field, and undergoing collapse to a much smaller volume if and when they are detected. The theory is based as far as possible directly on experiment, rather than on the existing quantum mechanical formalism, and it offers simple physical interpretations of such (...)
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  10.  45
    Understanding macroscopic quantum phenomena: The history of superfluidity 1941–1955.Kostas Gavroglu & Yorgos Goudaroulis - 1988 - Annals of Science 45 (4):367-385.
    In this paper we attempt to investigate the historical and methodological aspects of the developments related to superfluid helium, concentrating on the period between 1941 and 1955. During this period, the various developments constituted a series of steps towards redefining and refining the two-fluid concept devised to explain the unexpected macroscopic behaviour of superfluid helium. The idea that superfluids are essentially ‘quantum structures on a macroscopic scale’ functioned as a heuristic principle which guided the theoretical physicists engaged in the (...)
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  11. Quantum mechanics and macroscopic quantum phenomena: The case of superconductivity and superfluidity.Kostas Gavroglu & Yorgos Goudaroulis - 1989 - Zeitschrift Für Allgemeine Wissenschaftstheorie 20 (2):249-275.
    Supraleitfähigkeit und Superfluidität sind die einzigen bekannten makroskopischen Quantenphänomene. Ihre Untersuchung liefert interessante Hinweise, um einige der Fragen zu verstehen, die mit den Grenzen der Gültigkeit der Quantenmechanik verbunden sind. In diesem Aufsatz wollen wir den Prozeß entzifferen, durch den ein beobachtetes unerwartetes Phänomen in ein physikalisches Problem übergeführt wird, und wir zeigen die kontinuierliche Reinterpretation der Begriffe, um eine zufriedenstellende Erklärung der Supraleitfähigkeit und Superfluidität zu erreichen.
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  12.  39
    Ad hoc identity, Goyal complementarity, and counting quantum phenomena.Benjamin C. Jantzen - unknown
    I introduce a thin concept of ad hoc identity -- distinct from metaphysical accounts of either relative identity or absolute identity -- and an equally thin account of concepts and their content. According to the latter minimalist view of concepts, the content of a concept has behavioral consequences, and so content can be bounded if not determined by appeal to linguistic and psychological evidence. In the case of counting practices, this evidence suggests that the number concept depends on a notion (...)
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  13. A microrealistic explanation of fundamental quantum phenomena.C. W. Rietdijk - 1980 - Foundations of Physics 10 (5-6):403-457.
    We abandon as redundant the assumption that there exists something more in the physical world than action quanta, which constitute the atoms of the events of which the four-dimensional world consists. We derive metric, energy, matter, etc., from action and the structure formed by the quanta. In the microworld thequantization of space so introduced implies deviations from conventional metrics that make it possible in particular to explain nonlocality. The uncertainty relations, then, in conjunction with the action-based metric, appear to play (...)
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  14. (1 other version)The nature of causality in quantum phenomena.Joseph Berkovitz - 2000 - Theoria 15 (1):87-122.
    The correlations between distant systems in typical quantum situations, such as Einstein-Podolosky-Rosen experiments, strongly suggest that the quantum realm involves curious types of non-Iocal influences. In this paper, I study in detail the nature of these non-Iocal influences, as depicted by various quantum theories. I show how different quantum theories realise non-Iocality in different ways, whichreflect different ontological settings.
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  15.  26
    Evidence of Shared Aspects of Complexity Science and Quantum Phenomena.Cynthia Larson - 2016 - Cosmos and History 12 (2):160-171.
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  16. Synchronistic phenomena as entanglement correlations in generalized quantum theory.Walter von Lucado & H. Romer - 2007 - Journal of Consciousness Studies 14 (4):50-74.
    Synchronistic or psi phenomena are interpreted as entanglement correlations in a generalized quantum theory. From the principle that entanglement correlations cannot be used for transmitting information, we can deduce the decline effect, frequently observed in psi experiments, and we propose strategies for suppressing it and improving the visibility of psi effects. Some illustrative examples are discussed.
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  17.  29
    The Quantum-Like Approach of Psychosomatic Phenomena in Application.Pierre Uzan - 2014 - Axiomathes 24 (3):359-374.
    The quantum-like approach of psychosomatic phenomena suggests an explanation of the correlations between mind and body in terms of quantum-like entanglement, that is, without appealing to any concept of psychophysical, efficient causality. This approach is developed within the Hilbert space formalism and its general consequences are drawn. It is first illustrated by a simple, qualitative model of the placebo effect which shows that representing psychosomatic states by entangled states can explain that purely psychological factors can produce a-causal (...)
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  18.  74
    From Quantum Gravity to Classical Phenomena.Michael Esfeld & Antonio Vassallo - 2013 - In Tilman Sauer & Adrian Wüthrich (eds.), New Vistas on Old Problems. Max Planck Research Library for the History and Development of Knowledge.
    Quantum gravity is supposed to be the most fundamental theory, including a quantum theory of the metrical field (spacetime). However, it is not clear how a quantum theory of gravity could account for classical phenomena, including notably measurement outcomes. But all the evidence that we have for a physical theory is based on measurement outcomes. We consider this problem in the framework of canonical quantum gravity, pointing out a dilemma: all the available accounts that admit (...)
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  19. On the quantum mechanics of consciousness, with application to anomalous phenomena.Robert G. Jahn & Brenda J. Dunne - 1986 - Foundations of Physics 16 (8):721-772.
    Theoretical explication of a growing body of empirical data on consciousness-related anomalous phenomena is unlikely to be achieved in terms of known physical processes. Rather, it will first be necessary to formulate the basic role of consciousness in the definition of reality before such anomalous experience can adequately be represented. This paper takes the position that reality is constituted only in the interaction of consciousness with its environment, and therefore that any scheme of conceptual organization developed to represent that (...)
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  20.  30
    Quantum Physics with Neutrons: From Spinor Symmetry to Kochen-Specker Phenomena[REVIEW]Helmut Rauch - 2012 - Foundations of Physics 42 (1):153-172.
    In 1974 perfect crystal interferometry has been developed and immediately afterwards the 4π-symmetry of spinor wave-functions has been verified. The new method opened a new access to the observation of intrinsic quantum phenomena. Spin-superposition, quantum state reconstruction and quantum beat effects are examples of such investigations. In this connection efforts have been made to separate and measure various dynamical and geometrical phases. Non-cyclic and non-adiabatic topological phases have been identified and their stability against various fluctuations and (...)
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  21. Classical and Quantum Mechanics on Information Spaces with Applications to Cognitive, Psychological, Social, and Anomalous Phenomena.Andrei Khrennivov - 1999 - Foundations of Physics 29 (7):1065-1098.
    We use the system of p-adic numbers for the description of information processes. Basic objects of our models are so-called transformers of information, basic processes are information processes and statistics are information statistics (thus we present a model of information reality). The classical and quantum mechanical formalisms on information p-adic spaces are developed. It seems that classical and quantum mechanical models on p-adic information spaces can be applied for the investigation of flows of information in cognitive and social (...)
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  22. Quantum theory and explanatory discourse: Endgame for understanding?James T. Cushing - 1991 - Philosophy of Science 58 (3):337-358.
    Empirical adequacy, formal explanation and understanding are distinct goals of science. While no a priori criterion for understanding should be laid down, there may be inherent limitations on the way we are able to understand explanations of physical phenomena. I examine several recent contributions to the exercise of fashioning an explanatory discourse to mold the formal explanation provided by quantum mechanics to our modes of understanding. The question is whether we are capable of truly understanding (or comprehending) (...) phenomena, as opposed to simply accepting the formalism and certain irreducible quantum correlations. The central issue is that of understanding versus merely redefining terms to paper over our ignorance. (shrink)
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  23.  30
    Entanglement, Agency and Phenomena. Quantum Physics and Philosophy after Schelling.Germana Pareti - 2020 - Rivista di Estetica 74:159-180.
    The topic of this essay concerns the interest that the conception of nature in Schelling has aroused in the philosophical culture in the nineteenth and twentieth centuries. I propose to examine the retrieval of the philosophy of the nature of Schelling from the history of philosophy and history of science standpoints. Therefore, my paper will be divided into three parts. In particular, I will start by examining the state of the art on the reevaluation of Schelling in the context of (...)
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  24. How is Quantum Field Theory Possible?Sunny Y. Auyang - 1995 - New York: Oxford University Press.
    Quantum field theory (QFT) combines quantum mechanics with Einstein's special theory of relativity and underlies elementary particle physics. This book presents a philosophical analysis of QFT. It is the first treatise in which the philosophies of space-time, quantum phenomena, and particle interactions are encompassed in a unified framework. Describing the physics in nontechnical terms, and schematically illustrating complex ideas, the book also serves as an introduction to fundamental physical theories. The philosophical interpretation both upholds the reality (...)
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  25. Refutability revamped: How quantum mechanics saves the phenomena.Frederik A. Muller - 2003 - Erkenntnis 58 (2):189 - 211.
    On the basis of the Suppes–Sneed structuralview of scientific theories, we take a freshlook at the concept of refutability,which was famously proposed by K.R. Popper in 1934 as a criterion for the demarcation of scientific theories from non-scientific ones, e.g., pseudo-scientificand metaphysical theories. By way of an introduction we argue that a clash between Popper and his critics on whether scientific theories are, in fact, refutablecan be partly explained by the fact Popper and his criticsascribed different meanings to the term (...)
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  26.  15
    Quantum Objects: Non-Local Correlation, Causality and Objective Indefiniteness in the Quantum World.Gregg Jaeger - 2013 - Berlin, Heidelberg: Imprint: Springer.
    This monograph identifies the essential characteristics of the objects described by current quantum theory and considers their relationship to space-time. In the process, it explicates the senses in which quantum objects may be consistently considered to have parts of which they may be composed or into which they may be decomposed. The book also demonstrates the degree to which reduction is possible in quantum mechanics, showing it to be related to the objective indefiniteness of quantum properties (...)
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  27.  9
    Quantum concepts in physics: an alternative approach to the understanding of quantum mechanics.Malcolm S. Longair - 2013 - New york: Cambridge University Press.
    Written for advanced undergraduates, physicists, and historians and philosophers of physics, this book tells the story of the development of our understanding of quantum phenomena through the extraordinary years of the first three decades of the twentieth century. Rather than following the standard axiomatic approach, this book adopts a historical perspective, explaining clearly and authoritatively how pioneers such as Heisenberg, Schrodinger, Pauli and Dirac developed the fundamentals of quantum mechanics and merged them into a coherent theory, and (...)
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  28.  74
    Quantum equilibrium and the role of operators as observables in quantum theory.Sheldon Goldstein - manuscript
    Bohmian mechanics is arguably the most naively obvious embedding imaginable of Schr¨ odinger’s equation into a completely coherent physical theory. It describes a world in which particles move in a highly non-Newtonian sort of way, one which may at first appear to have little to do with the spectrum of predictions of quantum mechanics. It turns out, however, that as a consequence of the defining dynamical equations of Bohmian mechanics, when a system has wave function ψ its configuration is (...)
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  29. From Time Asymmetry to Quantum Entanglement: The Humean Unification.Eddy Keming Chen - 2022 - Noûs 56 (1):227-255.
    Two of the most difficult problems in the foundations of physics are (1) what gives rise to the arrow of time and (2) what the ontology of quantum mechanics is. I propose a unified 'Humean' solution to the two problems. Humeanism allows us to incorporate the Past Hypothesis and the Statistical Postulate into the best system, which we then use to simplify the quantum state of the universe. This enables us to confer the nomological status to the (...) state in a way that adds no significant complexity to the best system and solves the ''supervenient-kind problem'' facing the original version of the Past Hypothesis. We call the resultant theory the Humean unification. It provides a unified explanation of time asymmetry and quantum entanglement. On this theory, what gives rise to time's arrow is also responsible for quantum phenomena. The new theory has a separable mosaic, a best system that is simple and non-vague, less tension between quantum mechanics and special relativity, and a higher degree of theoretical and dynamical unity. The Humean unification leads to new insights that can be useful to Humeans and non-Humeans alike. (shrink)
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  30.  42
    Relational Quantum Mechanics and Probability.M. Trassinelli - 2018 - Foundations of Physics 48 (9):1092-1111.
    We present a derivation of the third postulate of relational quantum mechanics from the properties of conditional probabilities. The first two RQM postulates are based on the information that can be extracted from interaction of different systems, and the third postulate defines the properties of the probability function. Here we demonstrate that from a rigorous definition of the conditional probability for the possible outcomes of different measurements, the third postulate is unnecessary and the Born’s rule naturally emerges from the (...)
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  31. Multinomial Distribution, Quantum Statistics and Einstein-Podolsky-Rosen Like Phenomena.Ratan Dasgupta & Sisir Roy - 2008 - Foundations of Physics 38 (4):384-394.
    Bose-Einstein statistics may be characterized in terms of multinomial distribution. From this characterization, an information theoretic analysis is made for Einstein-Podolsky-Rosen like situation; using Shannon’s measure of entropy.
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  32. The quantum epoché.Paavo Pylkkänen - 2015 - Progress in Biophysics and Molecular Biology 119:332-340.
    The theme of phenomenology and quantum physics is here tackled by examining some basic interpretational issues in quantum physics. One key issue in quantum theory from the very beginning has been whether it is possible to provide a quantum ontology of particles in motion in the same way as in classical physics, or whether we are restricted to stay within a more limited view of quantum systems, in terms of complementary but mutually exclusive phenomena. (...)
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  33. Quantum transport and utilization of free energy in protein α-helices.Danko D. Georgiev & James F. Glazebrook - 2020 - Advances in Quantum Chemistry 82:253-300.
    The essential biological processes that sustain life are catalyzed by protein nano-engines, which maintain living systems in far-from-equilibrium ordered states. To investigate energetic processes in proteins, we have analyzed the system of generalized Davydov equations that govern the quantum dynamics of multiple amide I exciton quanta propagating along the hydrogen-bonded peptide groups in α-helices. Computational simulations have confirmed the generation of moving Davydov solitons by applied pulses of amide I energy for protein α-helices of varying length. The stability and (...)
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  34.  46
    The role of quantum recurrence in superconductivity, carbon nanotubes and related gauge symmetry breaking.Donatello Dolce & Andrea Perali - 2014 - Foundations of Physics 44 (9):905-922.
    Pure quantum phenomena are characterized by intrinsic recurrences in space and time. We use this intrinsic periodicity as a quantization condition to derive a heuristic description of the essential quantum phenomenology of superconductivity. The resulting description is based on fundamental quantum dynamics and geometrical considerations, rather than on microscopical characteristics of the superconducting materials. This allows us to investigate the related gauge symmetry breaking in terms of the competition between quantum recurrence and thermal noise. We (...)
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  35.  28
    Bohmian mechanics and quantum theory: an appraisal.James T. Cushing, Arthur Fine & Sheldon Goldstein - 1996 - Springer.
    We are often told that quantum phenomena demand radical revisions of our scientific world view and that no physical theory describing well defined objects, such as particles described by their positions, evolving in a well defined way, let alone deterministically, can account for such phenomena. The great majority of physicists continue to subscribe to this view, despite the fact that just such a deterministic theory, accounting for all of the phe nomena of nonrelativistic quantum mechanics, was (...)
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  36.  20
    Measuring Quantum Superpositions.Christian de Ronde - 2023 - In Jonas R. B. Arenhart & Raoni W. Arroyo (eds.), Non-Reflexive Logics, Non-Individuals, and the Philosophy of Quantum Mechanics: Essays in Honour of the Philosophy of Décio Krause. Springer Verlag. pp. 261-296.
    In this work we attempt to confront the orthodox widespread claim, present in the philosophical and foundational debates about Quantum Mechanics (QM), that ‘superpositions are never actually observed in the lab’. In order to do so, we begin by providing a critical analysis of the famous measurement problem which, we will argue, was originated as a consequence of the strict application of the empirical-positivist requirements to subsume the quantum formalism under their specific understanding of a physical ‘theory’. In (...)
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  37.  13
    Quantum language and the migration of scientific concepts.Jennifer Burwell - 2018 - Cambridge, Massachusetts: The MIT Press.
    This book looks at the use of language in science and in the circulation of scienctific concepts in society at large. More precisely, the book looks at the difficulties physicists faced regarding the use of language while creating quantum mechanics, with the use of quantum concepts in literary criticism and in literature, and with the use of these concepts by the New Age and Post New Age inclined. The principles of quantum physics--and the strange phenomena they (...)
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  38. A Quantum-Theoretic Argument Against Naturalism.Bruce L. Gordon - 2011 - In Bruce Gordon & William A. Dembski (eds.), The nature of nature: examining the role of naturalism in science. Wilmington, DE: ISI Books. pp. 179-214.
    Quantum theory offers mathematical descriptions of measurable phenomena with great facility and accuracy, but it provides absolutely no understanding of why any particular quantum outcome is observed. It is the province of genuine explanations to tell us how things actually work—that is, why such descriptions hold and why such predictions are true. Quantum theory is long on the what, both mathematically and observationally, but almost completely silent on the how and the why. What is even more (...)
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  39.  16
    Quantum Cultures during the Prehistory of Quantum Gravity: Léon Rosenfeld's Early Contributions to Quantum Gravity.Giulio Peruzzi & Alessio Rocci - 2019 - Berichte Zur Wissenschaftsgeschichte 42 (4):357-374.
    In this paper we consider the prehistory of quantum gravity (1916–1930) from two perspectives. First, we investigate how this research field constituted itself and we propose for the first time a red thread to trace its evolution in this earliest period. Second, we focus on a case study: the earliest work of Léon Rosenfeld. In 1927 he tried to merge wave mechanics with general relativity in the context of a five‐dimensional universe. We describe how Oskar Klein, Louis de Broglie, (...)
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  40. The Prototime Interpretation of Quantum Mechanics.Susan Schneider & Mark Bailey - manuscript
    We propose the Prototime Interpretation of quantum mechanics, which claims that quantum entanglement occurs in a "prototemporal" realm which underlies spacetime. Our paper is tentative and exploratory. The argument form is inference to the best explanation. We claim that the Prototime Interpretation (PI) is worthy of further consideration as a superior explanation for perplexing quantum phenomena such as delayed choice, superposition, the wave-particle duality and nonlocality. In Section One, we introduce the Prototime Interpretation. Section Two identifies (...)
     
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  41.  25
    Understanding Quantum Mechanics.Christian de Ronde - unknown
    Quantum Mechanics has faced deep controversies and debates since its origin when Werner Heisenberg proposed the first mathematical formalism capable to operationally account for what had been recently discovered as the new field of quantum phenomena. Today, even though we have reached a standardized version of QM which is taught in Universities all around the world, there is still no consensus regarding the conceptual reference of the theory and, if or if not, it can refer to something (...)
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  42.  6
    Quantum Mechanics and Inclusive Materialism.Javier Pérez-Jara - 2024 - Philosophies 9 (5):140.
    Since its inception, the intricate mathematical formalism of quantum mechanics has empowered physicists to describe and predict specific physical events known as quantum processes. However, this success in probabilistic predictions has been accompanied by a profound challenge in the ontological interpretation of the theory. This interpretative complexity stems from two key aspects. Firstly, quantum mechanics is a fundamental theory that, so far, is not derivable from any more basic scientific theory. Secondly, it delves into a realm of (...)
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  43. Quantum Mechanics and Free Will: Five Key Issues.José Manuel Muñoz - 2015 - Principia: An International Journal of Epistemology 19 (1):65-92.
    In this paper we critically analyze the situation of quantum mechanics in discussions on free will. It starts describing how the uncertainty principle and the measurement problem pose a challenge to determinism. Next, we present positions supporting and rejecting correlation between quantum phenomena and free will. Finally, we will place all these issues into the context of five key questions set out by Robert Kane: the Compatibility, Significance, Intelligibility, Existence and Determinist Questions.
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  44.  96
    Is quantum indeterminism real? Theological implications.Claudia E. Vanney - 2015 - Zygon 50 (3):736-756.
    Quantum mechanics studies physical phenomena on a microscopic scale. These phenomena are far beyond the reach of our observation, and the connection between QM's mathematical formalism and the experimental results is very indirect. Furthermore, quantum indeterminism defies common sense. Microphysical experiments have shown that, according to the empirical context, electrons and quanta of light behave as waves and other times as particles, even though it is impossible to design an experiment that manifests both behaviors at the (...)
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  45.  9
    Using Psychic Phenomena to Connect Mind to Brain and to Revise Quantum Mechanics.A. Klein Stanley - 2017 - Cosmos and History 13 (2):34-46.
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  46.  70
    The concept of quantum state: new views on old phenomena.Michel Paty - 2003 - In A. Ashtekar (ed.), Revisiting the Foundations of Relativistic Physics. Springer. pp. 451--478.
  47. Anomalous Light Phenomena vs. Brain Electric Activity. Quantum Mind Conference 2007, Salzburg (Austria) 16-20 July 2007.M. Teodorani & G. Nobili - forthcoming - Journal of Consciousness Studies.
  48. Quantum mechanical unbounded operators and constructive mathematics – a rejoinder to Bridges.Geoffrey Hellman - 1997 - Journal of Philosophical Logic 26 (2):121-127.
    As argued in Hellman (1993), the theorem of Pour-El and Richards (1983) can be seen by the classicist as limiting constructivist efforts to recover the mathematics for quantum mechanics. Although Bridges (1995) may be right that the constructivist would work with a different definition of 'closed operator', this does not affect my point that neither the classical unbounded operators standardly recognized in quantum mechanics nor their restrictions to constructive arguments are recognizable as objects by the constructivist. Constructive substitutes (...)
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  49. How Quantum Theory Helps Us Explain.Richard Healey - 2012 - British Journal for the Philosophy of Science (1):axt031.
    I offer an account of how the quantum theory we have helps us explain so much. The account depends on a pragmatist interpretation of the theory: this takes a quantum state to serve as a source of sound advice to physically situated agents on the content and appropriate degree of belief about matters concerning which they are currently inevitably ignorant. The general account of how to use quantum states and probabilities to explain otherwise puzzling regularities is then (...)
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  50.  16
    Bohr, Quantum Physics and the Laozi.Keekok Lee - 2017 - Australasian Philosophical Review 1 (3):298-304.
    ABSTRACTThis contribution argues that Bohr's notion of complementarity can be traced back to the Laozi which he would have read. In Chinese philosophy, polar contrasts such as yin and yang are not regarded as mutually exclusive; they are co-present, existing as a harmonious Whole. Such a conception of metaphysics and logic stood Bohr in good stead for characterising quantum phenomena which are at once both wave and particle. His notion of complementarity bears witness to the possibility of communication (...)
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