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Johan F. Prins

Publications and source records attributed to Johan F. Prins.

2 recordsLinked to original sources

Superconductivity: coherent "tunnelling" by a dielectric array of charge-carriers

Superconduction manifests when a steady-state current flows through a material without an electric field being present. It is argued here that the absence of scattering of the charge-carriers, although absolutely necessary, is not sufficient to explain why an electric field is zero when a current flows between two contacts to a superconducting material. It is concluded that an electric field, and thus a resistance, must manifest unless (i) the charge-carriers form part of an array of dielectric charge centres, and (ii) the charge-carriers can increase their velocities without increasing their kinetic energies. A model is propoased which allows these requirements to manifest. The model is fitted to selected experimental results which have been published for low temperature metals, YBCO, and highly-doped p-type diamond. In each case a satisfactory description of the experimental results is demonstrated.

physics.gen-ph

Causality and relativity in quantum physics

It is argued here that the Copenhagen interpretation of quantum mechanics violates the tenets on which both Galileo's and Einstein's theories of relativity are based. It is postulated that the "building blocks" of the universe are not "particles" but are holistic wave-entitities which act and interact with other wave-entities as one would expect from waves. A new approach to model the free electron is presented. It is argued from Coulomb's law that the electromagnetic quantum-field energy is not part of an electric field surrounding the electron, but is localised, so that it is wholly equal to the mass of the electron. It is found that an energy component must also exist along a fourth spatial dimension which could be the origin of the "dark energy" in the universe and which, in turn, should be responsible for "vacuum-fluctuations" as governed by Heisenberg's uncertainty relationship for energy and time. The possible consequences of this approach are analysed and discussed.

physics.gen-ph