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Space-Time Foam may Violate the Principle of Equivalence
The interactions of different particle species with the foamy space-time fluctuations expected in quantum gravity theories may not be universal, in which case different types of energetic particles may violate Lorentz invariance by varying amounts, violating the equivalence principle. We illustrate...
Autores principales: | , , , |
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Lenguaje: | eng |
Publicado: |
2003
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Materias: | |
Acceso en línea: | https://dx.doi.org/10.1142/S0217751X04019780 http://cds.cern.ch/record/690502 |
_version_ | 1780901958721208320 |
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author | Ellis, John R. Mavromatos, N.E. Nanopoulos, Dimitri V. Sakharov, A.S. |
author_facet | Ellis, John R. Mavromatos, N.E. Nanopoulos, Dimitri V. Sakharov, A.S. |
author_sort | Ellis, John R. |
collection | CERN |
description | The interactions of different particle species with the foamy space-time fluctuations expected in quantum gravity theories may not be universal, in which case different types of energetic particles may violate Lorentz invariance by varying amounts, violating the equivalence principle. We illustrate this possibility in two different models of space-time foam based on D-particle fluctuations in either flat Minkowski space or a stack of intersecting D-branes. Both models suggest that Lorentz invariance could be violated for energetic particles that do not carry conserved charges, such as photons, whereas charged particles such electrons would propagate in a Lorentz-inavariant way. The D-brane model further suggests that gluon propagation might violate Lorentz invariance, but not neutrinos. We argue that these conclusions hold at both the tree (lowest-genus) and loop (higher-genus) levels, and discuss their implications for the phenomenology of quantum gravity. |
id | cern-690502 |
institution | Organización Europea para la Investigación Nuclear |
language | eng |
publishDate | 2003 |
record_format | invenio |
spelling | cern-6905022023-03-14T20:48:28Zdoi:10.1142/S0217751X04019780http://cds.cern.ch/record/690502engEllis, John R.Mavromatos, N.E.Nanopoulos, Dimitri V.Sakharov, A.S.Space-Time Foam may Violate the Principle of EquivalenceGeneral Relativity and CosmologyThe interactions of different particle species with the foamy space-time fluctuations expected in quantum gravity theories may not be universal, in which case different types of energetic particles may violate Lorentz invariance by varying amounts, violating the equivalence principle. We illustrate this possibility in two different models of space-time foam based on D-particle fluctuations in either flat Minkowski space or a stack of intersecting D-branes. Both models suggest that Lorentz invariance could be violated for energetic particles that do not carry conserved charges, such as photons, whereas charged particles such electrons would propagate in a Lorentz-inavariant way. The D-brane model further suggests that gluon propagation might violate Lorentz invariance, but not neutrinos. We argue that these conclusions hold at both the tree (lowest-genus) and loop (higher-genus) levels, and discuss their implications for the phenomenology of quantum gravity.The interactions of different particle species with the foamy space-time fluctuations expected in quantum gravity theories may not be universal, in which case different types of energetic particles may violate Lorentz invariance by varying amounts, violating the equivalence principle. We illustrate this possibility in two different models of space-time foam based on D-particle fluctuations in either flat Minkowski space or a stack of intersecting D-branes. Both models suggest that Lorentz invariance could be violated for energetic particles that do not carry conserved charges, such as photons, whereas charged particles such electrons would propagate in a Lorentz-inavariant way. The D-brane model further suggests that gluon propagation might violate Lorentz invariance, but not neutrinos. We argue that these conclusions hold at both the tree (lowest-genus) and loop (higher-genus) levels, and discuss their implications for the phenomenology of quantum gravity.gr-qc/0312044CERN-TH-2003-296MIFP-03-26CERN-TH-2003-296MIFP-2003-26oai:cds.cern.ch:6905022003-12-08 |
spellingShingle | General Relativity and Cosmology Ellis, John R. Mavromatos, N.E. Nanopoulos, Dimitri V. Sakharov, A.S. Space-Time Foam may Violate the Principle of Equivalence |
title | Space-Time Foam may Violate the Principle of Equivalence |
title_full | Space-Time Foam may Violate the Principle of Equivalence |
title_fullStr | Space-Time Foam may Violate the Principle of Equivalence |
title_full_unstemmed | Space-Time Foam may Violate the Principle of Equivalence |
title_short | Space-Time Foam may Violate the Principle of Equivalence |
title_sort | space-time foam may violate the principle of equivalence |
topic | General Relativity and Cosmology |
url | https://dx.doi.org/10.1142/S0217751X04019780 http://cds.cern.ch/record/690502 |
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