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Towards a Non-Local S-Matrix Theory

We formulate an <math display="inline"><mi>S</mi></math>-matrix theory in which localization effects of the particle interactions involved in a scattering process are consistently taken into account. In the limit of an infinite spread of all interactions, the <ma...

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Autores principales: Karamitros, Dimitrios, Pilaftsis, Apostolos
Lenguaje:eng
Publicado: 2022
Materias:
Acceso en línea:https://dx.doi.org/10.1103/PhysRevD.108.036007
http://cds.cern.ch/record/2825206
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author Karamitros, Dimitrios
Pilaftsis, Apostolos
author_facet Karamitros, Dimitrios
Pilaftsis, Apostolos
author_sort Karamitros, Dimitrios
collection CERN
description We formulate an <math display="inline"><mi>S</mi></math>-matrix theory in which localization effects of the particle interactions involved in a scattering process are consistently taken into account. In the limit of an infinite spread of all interactions, the <math display="inline"><mi>S</mi></math>-matrix assumes its standard form. To better understand the significance of the emerging quantum phenomena in this formalism, we consider a solvable field-theoretic model with spatial Gaussian spreads at the interaction vertices. This solvable model, which was previously introduced in the literature, enables accurate descriptions of detection regions that are either close to or far from the source. In close analogy with light diffraction in classical optics, we call these two regions near-field and far-field zones, or the Fresnel and Fraunhofer regions. We revisit the question whether mixed mediators produce an oscillating pattern if their detection occurs in the Fresnel region. Besides corroborating certain earlier findings of the <math display="inline"><mi>S</mi></math>-matrix amplitude in the forward Fresnel and Fraunhofer regimes, we observe several novel features with respect to its angular dependence which have not been accounted before in the literature. In particular, we obtain a “quantum obliquity factor” that suppresses particle propagation in the backward direction, thereby providing an explicit quantum field-theoretic description for its origin in diffractive optics. Present and future colliders, as well as both short and long baseline neutrino experiments, would greatly benefit from the many predictions that can be offered from such a holistic localized <math display="inline"><mi>S</mi></math>-matrix theory.
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institution Organización Europea para la Investigación Nuclear
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spelling cern-28252062023-08-26T02:24:01Zdoi:10.1103/PhysRevD.108.036007http://cds.cern.ch/record/2825206engKaramitros, DimitriosPilaftsis, ApostolosTowards a Non-Local S-Matrix Theoryhep-thParticle Physics - TheoryGeneral Theoretical Physicshep-phquant-phParticle Physics - PhenomenologyWe formulate an <math display="inline"><mi>S</mi></math>-matrix theory in which localization effects of the particle interactions involved in a scattering process are consistently taken into account. In the limit of an infinite spread of all interactions, the <math display="inline"><mi>S</mi></math>-matrix assumes its standard form. To better understand the significance of the emerging quantum phenomena in this formalism, we consider a solvable field-theoretic model with spatial Gaussian spreads at the interaction vertices. This solvable model, which was previously introduced in the literature, enables accurate descriptions of detection regions that are either close to or far from the source. In close analogy with light diffraction in classical optics, we call these two regions near-field and far-field zones, or the Fresnel and Fraunhofer regions. We revisit the question whether mixed mediators produce an oscillating pattern if their detection occurs in the Fresnel region. Besides corroborating certain earlier findings of the <math display="inline"><mi>S</mi></math>-matrix amplitude in the forward Fresnel and Fraunhofer regimes, we observe several novel features with respect to its angular dependence which have not been accounted before in the literature. In particular, we obtain a “quantum obliquity factor” that suppresses particle propagation in the backward direction, thereby providing an explicit quantum field-theoretic description for its origin in diffractive optics. Present and future colliders, as well as both short and long baseline neutrino experiments, would greatly benefit from the many predictions that can be offered from such a holistic localized <math display="inline"><mi>S</mi></math>-matrix theory.We formulate an S-matrix theory in which localisation effects of the particle interactions involved in a scattering process are consistently taken into account. In the limit of an infinite spread of all interactions, the S-matrix assumes its standard form. To better understand the significance of the emerging quantum phenomena in this formalism, we consider a solvable field-theoretic model with spatial Gaussian spreads at the interaction vertices. This solvable model, which was previously introduced in the literature, enables accurate descriptions of detection regions that are either close to or far from the source. In close analogy with light diffraction in classical optics, we call these two regions near-field and far-field zones, or the Fresnel and Fraunhofer regions. We revisit the question whether mixed mediators produce an oscillating pattern if their detection occurs in the Fresnel region. Besides corroborating certain earlier findings of the S-matrix amplitude in the forward Fresnel and Fraunhofer regimes, we observe several novel features with respect to its angular dependence which have not been accounted before in the literature. In particular, we obtain a ``quantum obliquity factor'' that suppresses particle propagation in the backwards direction, thereby providing an explicit quantum field-theoretic description for its origin in diffractive optics. Present and future colliders, as well as both short and long baseline neutrino experiments, would greatly benefit from the many predictions that can be offered from such a holistic localised S-matrix theory.arXiv:2208.10425CERN-TH-2022-138oai:cds.cern.ch:28252062022-08-22
spellingShingle hep-th
Particle Physics - Theory
General Theoretical Physics
hep-ph
quant-ph
Particle Physics - Phenomenology
Karamitros, Dimitrios
Pilaftsis, Apostolos
Towards a Non-Local S-Matrix Theory
title Towards a Non-Local S-Matrix Theory
title_full Towards a Non-Local S-Matrix Theory
title_fullStr Towards a Non-Local S-Matrix Theory
title_full_unstemmed Towards a Non-Local S-Matrix Theory
title_short Towards a Non-Local S-Matrix Theory
title_sort towards a non-local s-matrix theory
topic hep-th
Particle Physics - Theory
General Theoretical Physics
hep-ph
quant-ph
Particle Physics - Phenomenology
url https://dx.doi.org/10.1103/PhysRevD.108.036007
http://cds.cern.ch/record/2825206
work_keys_str_mv AT karamitrosdimitrios towardsanonlocalsmatrixtheory
AT pilaftsisapostolos towardsanonlocalsmatrixtheory