OPTICAL QUANTUM ENTANGLEMENT IN ASTROPHYSICS

The theories of quantum entanglement between two distant particles, which clearly conrm the non-local nature of Quantum Mechanics, are applied to naturally produced particles in astrophysical objects. We study the production and reception of the cases of optical quantum entanglement most feasible to...

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Detalles Bibliográficos
Autores: Javier Gómez, Antonio Peimbert, Juan Echevarría
Tipo de recurso: artículo
Estado:Versión publicada
Fecha de publicación:2009
País:México
Institución:Universidad Nacional Autónoma de México
Repositorio:Redalyc-UNAM
OAI Identifier:oai:redalyc.org:57112175007
Acceso en línea:https://www.redalyc.org/articulo.oa?id=57112175007
Access Level:acceso abierto
Palabra clave:Física, Astronomía y Matemáticas
NGC 7293)
HII regions
Sun: corona
planetary nebulae: individual (IC 2149
Descripción
Sumario:The theories of quantum entanglement between two distant particles, which clearly conrm the non-local nature of Quantum Mechanics, are applied to naturally produced particles in astrophysical objects. We study the production and reception of the cases of optical quantum entanglement most feasible to be observed: the twophoton spontaneous transition of the hydrogen 2 2S1=2 metastable level, which is known to be one of the components of the continuous spectra of ionized regions. We obtain the two-photon emission rate for four astrophysical objects: the Orion Nebula, two nearby planetary nebulae IC 2149 and NGC 7293, and the solar corona. The production of entangled pairs per second is 5:80X1048, 9:39X1045, 9:77X1044, and 1:46X1016 respectively. The distribution of the propagation directions of both emitted photons does not vanish at any angle; therefore it is possible to observe the entangled pair at angles 0°. Because the number of two-photon coincidencesgoes as the fourth power of the ratio between the detector size and the distance from the astrophysical object, coincidences are scarce; for its detection we require receivers much larger than those currently available.