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Mirror Symmetry, $N=1$ Superpotentials and Tensionless Strings on Calabi-Yau Four-Folds

We study aspects of Calabi--Yau four-folds as compactification manifolds of F-theory, using mirror symmetry. Correlation functions of the topological field theory are determined directly in terms of a natural ring structure of divisors and the period integrals, and subsequently used to extract invar...

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Autor principal: Mayr, P.
Lenguaje:eng
Publicado: 1996
Materias:
Acceso en línea:https://dx.doi.org/10.1016/S0550-3213(97)00196-X
http://cds.cern.ch/record/313301
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author Mayr, P.
author_facet Mayr, P.
author_sort Mayr, P.
collection CERN
description We study aspects of Calabi--Yau four-folds as compactification manifolds of F-theory, using mirror symmetry. Correlation functions of the topological field theory are determined directly in terms of a natural ring structure of divisors and the period integrals, and subsequently used to extract invariants of moduli spaces of rational curves subject to certain conditions. We then turn to the discussion of physical properties of the space-time theories, for a number of examples which are dual to $E_8\times E_8$ heterotic $N=1$ theories. Non-critical strings of various kinds, with low tension for special values of the moduli, lead to interesting physical effects. We investigate the generation of a non-perturbative superpotential in the four-dimensional theory and relate it to singularities associated with tensionless strings. In other cases non-perturbative effects generate an everywhere non-zero quantum tension leading to a combination of a conventional field theory with light strings hiding at a low energy scale.
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spelling cern-3133012023-03-14T19:28:54Zdoi:10.1016/S0550-3213(97)00196-Xhttp://cds.cern.ch/record/313301engMayr, P.Mirror Symmetry, $N=1$ Superpotentials and Tensionless Strings on Calabi-Yau Four-FoldsParticle Physics - TheoryWe study aspects of Calabi--Yau four-folds as compactification manifolds of F-theory, using mirror symmetry. Correlation functions of the topological field theory are determined directly in terms of a natural ring structure of divisors and the period integrals, and subsequently used to extract invariants of moduli spaces of rational curves subject to certain conditions. We then turn to the discussion of physical properties of the space-time theories, for a number of examples which are dual to $E_8\times E_8$ heterotic $N=1$ theories. Non-critical strings of various kinds, with low tension for special values of the moduli, lead to interesting physical effects. We investigate the generation of a non-perturbative superpotential in the four-dimensional theory and relate it to singularities associated with tensionless strings. In other cases non-perturbative effects generate an everywhere non-zero quantum tension leading to a combination of a conventional field theory with light strings hiding at a low energy scale.We study aspects of Calabi--Yau four-folds as compactification manifolds of F-theory, using mirror symmetry. Correlation functions of the topological field theory are determined directly in terms of a natural ring structure of divisors and the period integrals, and subsequently used to extract invariants of moduli spaces of rational curves subject to certain conditions. We then turn to the discussion of physical properties of the space-time theories, for a number of examples which are dual to $E_8\times E_8$ heterotic $N=1$ theories. Non-critical strings of various kinds, with low tension for special values of the moduli, lead to interesting physical effects. We investigate the generation of a non-perturbative superpotential in the four-dimensional theory and relate it to singularities associated with tensionless strings. In other cases non-perturbative effects generate an everywhere non-zero quantum tension leading to a combination of a conventional field theory with light strings hiding at a low energy scale.We study aspects of Calabi-Yau four-folds as compactification manifolds of F-theory, using mirror symmetry of toric hypersurfaces. Correlation functions of the topological field theory are determined directly in terms of a natural ring structure of divisors and the period integrals, and subsequently used to extract invariants of moduli spaces of rational curves subject to certain conditions. We then turn to the discussion of physical properties of the space-time theories, for a number of examples which are dual to E 8 × E 8 heterotic N = 1 theories. Non-critical strings of various kinds, with low tension for special values of the moduli, lead to interesting physical effects. We give a complete classification of those divisors in toric manifolds that contribute to the non-perturbative four-dimensional superpotential; the physical singularities associated to it are related to the appearance of tensionless strings. In some cases non-perturbative effects generate an everywhere non-zero quantum tension leading to a combination of a conventional field theory with light strings hiding at a low energy scale related to supersymmetry breaking.hep-th/9610162CERN-TH-96-269CERN-TH-96-269oai:cds.cern.ch:3133011996-10-22
spellingShingle Particle Physics - Theory
Mayr, P.
Mirror Symmetry, $N=1$ Superpotentials and Tensionless Strings on Calabi-Yau Four-Folds
title Mirror Symmetry, $N=1$ Superpotentials and Tensionless Strings on Calabi-Yau Four-Folds
title_full Mirror Symmetry, $N=1$ Superpotentials and Tensionless Strings on Calabi-Yau Four-Folds
title_fullStr Mirror Symmetry, $N=1$ Superpotentials and Tensionless Strings on Calabi-Yau Four-Folds
title_full_unstemmed Mirror Symmetry, $N=1$ Superpotentials and Tensionless Strings on Calabi-Yau Four-Folds
title_short Mirror Symmetry, $N=1$ Superpotentials and Tensionless Strings on Calabi-Yau Four-Folds
title_sort mirror symmetry, $n=1$ superpotentials and tensionless strings on calabi-yau four-folds
topic Particle Physics - Theory
url https://dx.doi.org/10.1016/S0550-3213(97)00196-X
http://cds.cern.ch/record/313301
work_keys_str_mv AT mayrp mirrorsymmetryn1superpotentialsandtensionlessstringsoncalabiyaufourfolds