Hints of the Photonic Nature of the Electromagnetic fields in Classical Electrodynamics and its connection to the electronic charge and vacuum energy density
Vernon Cooray, Gerald Cooray, Marcos Rubinstein, Farhad Rachidi

TL;DR
This paper suggests that classical electrodynamics and relativity imply a photonic nature of electromagnetic fields, linking electronic charge, vacuum energy, and fundamental constants, and providing a new expression for vacuum energy density.
Contribution
It introduces a classical framework connecting electromagnetic field properties to quantum constants and derives a novel formula for vacuum energy density based on fundamental constants.
Findings
Energy dissipated per radiation burst relates to the electronic charge.
Reduction of oscillating charge to electronic charge yields photon energy hv.
Derived an expression for vacuum energy density consistent with observations.
Abstract
The electromagnetic fields of a long dipole working without dispersive and dissipative losses are analyzed in the frequency domains. The dipole produces radiation in bursts of duration T/2 where T is the period of oscillation. The parameter studied in this paper is the energy, U, dissipated in a single burst of radiation of duration T/2. We have studied how U vary as a function of the charge associated with the current in the dipole and the ratio of the length of the dipole and its radius. We have observed a remarkable result when this ratio is equal to the ratio of the radius of the universe to the Bohr radius. Our results, based purely on the classical electrodynamics and general relativity, show that, as the magnitude of the oscillating charge (as defined by the root mean square) reduces to the electronic charge, the energy dissipated in a single burst of radiation reduces to hv,…
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Taxonomy
TopicsExperimental and Theoretical Physics Studies · Mechanical and Optical Resonators · Quantum Mechanics and Applications
