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The Apparent Dual Nature of Electromagnetic Waves
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The Planck-Einstein relation, E = hf, relates the energy of discrete pulses of black body radiation, X-rays, and gamma rays to their wave frequency. This relationship appears to contradict the wave theory of light. An investigation will now take place regarding whether the Planck-Einstein relation, and Planck’s constant itself, lie in the domain of the medium for the propagation of light, or in the vestibule of the atom, or in both. See here,
{{Infobox paper
| title = The Apparent Dual Nature of Electromagnetic Waves
| author = [[David Tombe]]
| published = 2021
| url = https://www.researchgate.net/publication/356194121_The_Apparent_Dual_Nature_of_Electromagnetic_Waves
}}


https://www.researchgate.net/publication/356194121_The_Apparent_Dual_Nature_of_Electromagnetic_Waves
==Abstract==
 
The Planck-Einstein relation, E = hf, relates the energy of discrete pulses of black body radiation, X-rays, and gamma rays to their wave frequency. This relationship appears to contradict the wave theory of light. An investigation will now take place regarding whether the Planck-Einstein relation, and Planck’s constant itself, lie in the domain of the medium for the propagation of light, or in the vestibule of the atom, or in both.
 
[[Category:Scientific Paper|apparent dual nature of electromagnetic waves]]
[[Category:Electrodynamics|apparent dual nature of electromagnetic waves]]

Latest revision as of 07:06, 22 July 2026

Scientific Paper
TitleThe Apparent Dual Nature of Electromagnetic Waves
Read in fullhttps://www.researchgate.net/publication/356194121_The_Apparent_Dual_Nature_of_Electromagnetic_Waves
Author(s)David Tombe
Published2021

Abstract

The Planck-Einstein relation, E = hf, relates the energy of discrete pulses of black body radiation, X-rays, and gamma rays to their wave frequency. This relationship appears to contradict the wave theory of light. An investigation will now take place regarding whether the Planck-Einstein relation, and Planck’s constant itself, lie in the domain of the medium for the propagation of light, or in the vestibule of the atom, or in both.