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L. de la Pena [10]Luis de la Peña [2]L. RuÍz De La PeÑa [1]Luis José de la Peña [1]
  1.  21
    On the Spin Projection Operator and the Probabilistic Meaning of the Bipartite Correlation Function.Ana María Cetto, Andrea Valdés-Hernández & Luis de la Peña - 2020 - Foundations of Physics 50 (1):27-39.
    Spin is a fundamental and distinctive property of the electron, having far-reaching implications. Yet its purely formal treatment often blurs the physical content and meaning of the spin operator and associated observables. In this work we propose to advance in disclosing the meaning behind the formalism, by first recalling some basic facts about the one-particle spin operator. Consistently informed by and in line with the quantum formalism, we then proceed to analyse in detail the spin projection operator correlation function \=\left\langle (...)
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  2.  69
    Quantum Theory and Linear Stochastic Electrodynamics.L. De la Peña & A. M. Cetto - 2001 - Foundations of Physics 31 (12):1703-1731.
    We discuss the main results of Linear Stochastic Electrodynamics, starting from a reformulation of its basic assumptions. This theory shares with Stochastic Electrodynamics the core assumption that quantization comes about from the permanent interaction between matter and the vacuum radiation field, but it departs from it when it comes to considering the effect that this interaction has on the statistical properties of the nearby field. In the transition to the quantum regime, correlations between field modes of well-defined characteristic frequencies arise, (...)
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  3.  49
    Stochastic theory for classical and quantum mechanical systems.L. de la Peña & A. M. Cetto - 1975 - Foundations of Physics 5 (2):355-370.
    We formulate from first principles a theory of stochastic processes in configuration space. The fundamental equations of the theory are an equation of motion which generalizes Newton's second law and an equation which expresses the condition of conservation of matter. Two types of stochastic motion are possible, both described by the same general equations, but leading in one case to classical Brownian motion behavior and in the other to quantum mechanical behavior. The Schrödinger equation, which is derived here with no (...)
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  4.  31
    The Foundations of Linear Stochastic Electrodynamics.L. De la Peña & A. M. Cetto - 2006 - Foundations of Physics 36 (3):350-368.
    An analysis is briefly presented of the possible causes of the failure of stochastic electrodynamics (SED) when applied to systems with nonlinear forces, on the basis that the main principles of the theory are correct. In light of this analysis, an alternative approach to the theory is discussed, whose postulates allow to establish contact with quantum mechanics in a natural way. The ensuing theory, linear SED, confirms the essential role of the vacuum–particle interaction as the source of quantum phenomena.
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  5.  32
    The spin of the electron according to stochastic electrodynamics.L. de la Peña & A. Jáuregui - 1982 - Foundations of Physics 12 (5):441-465.
    By making use of the method of moments we study some aspects of the statistical behavior of the nonrelativistic harmonic oscillator according to stochastic electrodynamics. We show that the random rotations induced on the particle by the zero-point field account for the magnitude of the spin of the electron, the result differing from the correct one(3/4)h 2 by a factor of2. Assuming that the measurement of a spin projection may be effectively taken into account by considering the action of only (...)
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  6.  22
    Continuous and discrete aspects of blackbody radiation.A. M. Cetto & L. de la Penã - 1989 - Foundations of Physics 19 (4):419-437.
    The blackbody radiation field is studied from different points of view. The existence of zero-point fluctuations is shown to be crucial in determining the form of the thermal part of the spectrum. The notion of a continuous field is seen to be compatible with a discrete structure for its interaction: The description normally used in the quantum context does not refer to the field but to its interaction with atomic systems, which involves statistically independent elementary acts of absorption and emission. (...)
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  7. List of Contents: Volume 13, Number 3, June 2000.Semi-Infinite Rectangular Barrier, K. Dechoum, L. de la Pena, E. Santos, A. Schulze, G. Esposito, C. Stornaiolo & P. K. Anastasovski - 2000 - Foundations of Physics 30 (10).
  8.  10
    Zeropoint waves and quantum particles.A. M. Cetto & L. de la Pena - 1995 - In M. Ferrero & A. van der Merwe (eds.), Fundamental Problems in Quantum Physics. pp. 47.
  9.  26
    Does quantum mechanics accept a stochastic support?L. de la Peña & A. M. Cetto - 1982 - Foundations of Physics 12 (10):1017-1037.
    Arguments are given in favor of a stochastic theory of quantum mechanics, clearly distinguishable from Brownian motion theory. A brief exposition of the phenomenological theory of stochastic quantum mechanics is presented, followed by a list of its main results and perspectives. A possible answer to the question about the origin of stochasticity is given in stochastic electrodynamics by assigning a real character to the vacuum radiation field. This theory is shown to reproduce important quantum mechanical results, some of which are (...)
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  10.  7
    Is quantum mechanics a limit cycle theory.L. De la Peña & A. M. Cetto - 1995 - In M. Ferrero & A. van der Merwe (eds.), Fundamental Problems in Quantum Physics. pp. 225.
  11.  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, the (...)
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  12.  74
    The wave properties of matter and the zeropoint radiation field.L. de la Peña & A. M. Cetto - 1994 - Foundations of Physics 24 (5):753-781.
    The origin of the wave properties of matter is discussed from the point of view of stochastic electrodynamics. A nonrelativistic model of a charged particle with an effective structure embedded in the random zeropoint radiation field reveals that the field induces a high-frequency vibration on the particle; internal consistency of the theory fixes the frequency of this jittering at mc2/ħ. The particle is therefore assumed to interact intensely with stationary zeropoint waves of this frequency as seen from its proper frame (...)
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