Some comments on the matter wave-light wave hypothesis

From the de Broglie matter wave hypothesis and Planck’s energy quantization law, and assuming conservation of energy in the absorption of a photon and its consequent conversion to kinetic energy of motion by a material particle initially at rest, one can deduce a simple mathematical relationship bet...

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Autores principales: Bucknum, Michael J., Castro, Eduardo Alberto
Formato: Articulo
Lenguaje:Inglés
Publicado: 2007
Materias:
Acceso en línea:http://sedici.unlp.edu.ar/handle/10915/141885
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id I19-R120-10915-141885
record_format dspace
institution Universidad Nacional de La Plata
institution_str I-19
repository_str R-120
collection SEDICI (UNLP)
language Inglés
topic Ciencias Exactas
Química
Planck energy quantization
de Broglie matter wave hypothesis
photon
wave mechanics
photosynthesis
tunable radiation
spellingShingle Ciencias Exactas
Química
Planck energy quantization
de Broglie matter wave hypothesis
photon
wave mechanics
photosynthesis
tunable radiation
Bucknum, Michael J.
Castro, Eduardo Alberto
Some comments on the matter wave-light wave hypothesis
topic_facet Ciencias Exactas
Química
Planck energy quantization
de Broglie matter wave hypothesis
photon
wave mechanics
photosynthesis
tunable radiation
description From the de Broglie matter wave hypothesis and Planck’s energy quantization law, and assuming conservation of energy in the absorption of a photon and its consequent conversion to kinetic energy of motion by a material particle initially at rest, one can deduce a simple mathematical relationship between the wavelength λ (or frequency ν), of the photon absorbed by the particle at rest, and the resulting de Broglie matter wave length, λ<sub>D</sub>, of the particle with kinetic energy of motion of mv²/2. The relationship so deduced, λ<sub>D</sub> ∝ √λ, suggests that visible wavelengths of light, from about 4000 Å, in the violet, to beyond about 7000 Å, in the red, on absorption by an electron at rest, lead to material electron wavelengths, λ<sub>D</sub>, of the order of the size of the electron transfer proteins seen in the photosynthetic reaction centers of photosynthesizing organisms, at about a size of 50–100 Å. In addition to understanding the mechanism of photosynthesis as a material wave mediated phenomenon, further areas of importance of the relations pointed out in this paper are in the design of experiments to gain a deeper understanding of the basic tenets of wave mechanics, and in the use of tunable lasers to probe various properties of material waves, and to precisely control their properties for applications including lithography.
format Articulo
Articulo
author Bucknum, Michael J.
Castro, Eduardo Alberto
author_facet Bucknum, Michael J.
Castro, Eduardo Alberto
author_sort Bucknum, Michael J.
title Some comments on the matter wave-light wave hypothesis
title_short Some comments on the matter wave-light wave hypothesis
title_full Some comments on the matter wave-light wave hypothesis
title_fullStr Some comments on the matter wave-light wave hypothesis
title_full_unstemmed Some comments on the matter wave-light wave hypothesis
title_sort some comments on the matter wave-light wave hypothesis
publishDate 2007
url http://sedici.unlp.edu.ar/handle/10915/141885
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