Some Consequences of Zero Point Energy
- 1 Alfvén Laboratory, Royal Institute of Technology, Stockholm, Sweden
Abstract
Both theory and experiments indicate that the vacuum is not a state of empty space, but is populated by electromagnetic fluctuations at a lowest nonzero level, the Zero Point Energy (ZPE). This debouches into considerable changes of fundamental physics, as shown by a revised quantum electrodynamic theory (RQED) applied to elementary particles, and by a revised ZPE frequency spectrum applied to the expanding universe. The Standard Model based on a vacuum state of empty space is thus replaced by RQED, thereby resulting in massive elementary particles from the beginning, independently of the theory by Higgs. Also the basic properties of the Higgs-like particle detected at CERN can be reproduced by RQED. It further leads to new fundamental results beyond the theories by Dirac and Higgs, such as to a deduced value of the elementary net charge, magnetic confinement of charged particle configurations, intrinsic local particle charges, photon spin with a very small but nonzero photon rest mass, and needle-like particle-wave properties which contribute to the understanding of the photoelectric effect and two-slit experiments. The real macroscopic pressure due to the revised ZPE frequency distribution further influences the dynamics of the expanding universe, by the ZPE photon pressure gradient acting as dark energy, and the ZPE photon energy density acting as dark matter. This results in a model being consistent with the observed scale, the rate of expansion, and the stability of a flat expanding observable universe.
- Pauling, L. and Wilson, E.B (1935) Introduction to Quantum Mechanics. McGraw-Hill Book Comp., Inc., New York and London, 72.
- Schiff, L. (1949) Quantum Mechanics. McGraw-Hill Book Comp., Inc., New York-Toronto-London, 62, 370, 388.
- Abbott, L. (1988) The Mystery of the Cosmological Constant. Scientific American, 258, 106-113. http://dx.doi.org/10.1038/scientificamerican0588-106
- Casimir, H.B.G. (1948) On the Attraction between Two Perfectly Conducting Plates. Proc.Ned.Akad.Wet., 51, 793-795.
- Lamoreaux, S.K. (1997) Demonstration of the Casimir Force in the 0.6 to 6 μm Range. Physical Review Letters, 78, 5-8. http://dx.doi.org/10.1103/PhysRevLett.78.5
- Milonni, P.W. (1994) The Quantum Vacuum. American Press, Inc., Harcourt Brace and Company, Publishers, Boston, San Diego, New York, London, Sydney, Tokyo and Toronto.
- Lehnert, B. (2013) Revised Quantum Electrodynamics. In: Dvoeglazov, V.V., Ed, Contemporary Fundamental Physics, Nova Science Publishers, Inc., New York.
- Lehnert, B. (2013) Potentialities of Revised Quantum Electrodynamics. Progress in Physics, 4, 48-52.
- Lehnert, B. (2013) Dark Energy and Dark Matter as due to Zero Point Energy. Journal of Plasma Physics, 79, 327-334. http://dx.doi.org/10.1017/S0022377812001055
- Morse, P.M. and Feshbach, H. (1953) Methods of Theoretical Physics. McGraw-Hill Book Comp., Inc., New York, Toronto, London, Part I, Ch. 2, Paragraph 2.5, 208-209, 260.
- Quigg, C. (2008) The Coming Revolution in Particle Physics. Scientific American, 298, 46-53. http://dx.doi.org/10.1038/scientificamerican0208-46
- Heitler, W. (1954) The Quantum Theory of Radiation. 3rd Edition, Clarendon Press, Oxford, Appendix, 409, 57, 326.
- Lehnert, B. (2013) Higgs-Like Particle due to Revised Quantum Electrodynamics. Progress in Physics, 4, 31-32.
- Lehnert, B. (2014) Mass-Radius Relations of Z and Higgs-Like Bosons. Progress in Physics, 10, 5-7.
- Higgs, P.W. (1966) Spontaneous Symmetry Breakdown without Massless Bosons. Physical Review, 145, 1156-1168. http://dx.doi.org/10.1103/PhysRev.145.1156
- Aad, G., Abajyan, T., Abbott, B., Abdallah, J., Khalek, S.A., Abdelalim, A.A., et al. (2012) Observation of a New Particle in the Search for the Standard Model Higgs Boson with the ATLAS Detector at the LHC. Physics Letters B, 716, 1-29. http://dx.doi.org/10.1016/j.physletb.2012.08.020