Casimir vacuum energy and the semiclassical electron
H. E. Puthoff
Abstract
In 1953 Casimir proposed a semiclassical model for the electron based on the concept that net inward radiation pressure from the electromagnetic vacuum fluctuations fields (as in the Casimir effect, generally) might play the role of Poincare stresses, compensating outward coulomb pressure to yield a stable configuration at small dimensions. Given that in scattering experiments the electron appears point-like, critical to the success of the proposed model is demonstration that the self-energy corresponding to the divergent coulomb field does not contribute to the electron mass. Here we develop a self-consistent, vacuum-fluctuation-based model that satisfies this requirement and thereby resolves the issue of what would otherwise appear to be an incompatibility between a point-like electron and finite mass.
Create a lesson
Related papers
Dark Matter Imprints on Black Hole Shadows and Chaotic Dynamics: A Comparative Study of Halo Profiles around Sgr A and M87
Ali Naqi, Mubasher Jamil, Noraiz Tahir et al.
Cosmological Perturbations and Observational Constraints on Spinor Field Quintessence Dark Energy
Mahendra Goray
Bianchi Type I Space -Time Geometry of the Universe with Time Dependent G and Λ Within the Framework of General Relativity: Observational Aspects
S. Kotambkar, G. K. Goswami, R. Kelkar et al.
Influence of Generalized Ghost Dark Energy on Wormhole Geometry
Soubhik Paramanik, Anamika Kotal, Ujjal Debnath
Exploring thermodynamic and photonic properties of new black hole solutions in F(R) gravity theory
Mohsen Dehghani
Formulations of elastodynamic equations for anisotropic multiphase porous piezoelectric media based on global energy conservation
Xiuming Wang, Yinqiu Zhou, Zhixiang Sun et al.