Generalized supergravity equations and generalized Fradkin-Tseytlin counterterm
Abstract The generalized Fradkin-Tseytlin counterterm for the (type I) Green-Schwarz superstring is determined for background fields satisfying the generalized supergravity equations (GSE). For this purpose, we revisit the derivation of the GSE based upon the requirement of kappa-symmetry of the sup...
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Online Access: | http://link.springer.com/article/10.1007/JHEP05(2019)063 |
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doaj-95d66cd11a67412298a421d2b93a3dd02020-11-25T02:04:33ZengSpringerOpenJournal of High Energy Physics1029-84792019-05-012019511910.1007/JHEP05(2019)063Generalized supergravity equations and generalized Fradkin-Tseytlin countertermWolfgang Mück0Dipartimento di Fisica “Ettore Pancini”, Università degli Studi di Napoli “Federico II”Abstract The generalized Fradkin-Tseytlin counterterm for the (type I) Green-Schwarz superstring is determined for background fields satisfying the generalized supergravity equations (GSE). For this purpose, we revisit the derivation of the GSE based upon the requirement of kappa-symmetry of the superstring action. Lifting the constraint of vanishing bosonic torsion components, we are able to make contact to several different torsion constraints used in the literature. It is argued that a natural geometric interpretation of the GSE vector field that generalizes the dilaton is as the torsion vector, which can combine with the dilatino spinor into the torsion supervector. To find the counterterm, we use old results for the one-loop effective action of the heterotic sigma model. The counterterm is covariant and involves the worldsheet torsion for vanishing curvature, but cannot be constructed as a local functional in terms of the worldsheet metric. It is shown that the Weyl anomaly cancels without imposing any further constraints on the background fields. In the case of ordinary supergravity, it reduces to the Fradkin-Tseytlin counterterm modulo an additional constraint.http://link.springer.com/article/10.1007/JHEP05(2019)063Anomalies in Field and String TheoriesSuperstrings and Heterotic StringsSuperspacesSuperstring Vacua |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Wolfgang Mück |
spellingShingle |
Wolfgang Mück Generalized supergravity equations and generalized Fradkin-Tseytlin counterterm Journal of High Energy Physics Anomalies in Field and String Theories Superstrings and Heterotic Strings Superspaces Superstring Vacua |
author_facet |
Wolfgang Mück |
author_sort |
Wolfgang Mück |
title |
Generalized supergravity equations and generalized Fradkin-Tseytlin counterterm |
title_short |
Generalized supergravity equations and generalized Fradkin-Tseytlin counterterm |
title_full |
Generalized supergravity equations and generalized Fradkin-Tseytlin counterterm |
title_fullStr |
Generalized supergravity equations and generalized Fradkin-Tseytlin counterterm |
title_full_unstemmed |
Generalized supergravity equations and generalized Fradkin-Tseytlin counterterm |
title_sort |
generalized supergravity equations and generalized fradkin-tseytlin counterterm |
publisher |
SpringerOpen |
series |
Journal of High Energy Physics |
issn |
1029-8479 |
publishDate |
2019-05-01 |
description |
Abstract The generalized Fradkin-Tseytlin counterterm for the (type I) Green-Schwarz superstring is determined for background fields satisfying the generalized supergravity equations (GSE). For this purpose, we revisit the derivation of the GSE based upon the requirement of kappa-symmetry of the superstring action. Lifting the constraint of vanishing bosonic torsion components, we are able to make contact to several different torsion constraints used in the literature. It is argued that a natural geometric interpretation of the GSE vector field that generalizes the dilaton is as the torsion vector, which can combine with the dilatino spinor into the torsion supervector. To find the counterterm, we use old results for the one-loop effective action of the heterotic sigma model. The counterterm is covariant and involves the worldsheet torsion for vanishing curvature, but cannot be constructed as a local functional in terms of the worldsheet metric. It is shown that the Weyl anomaly cancels without imposing any further constraints on the background fields. In the case of ordinary supergravity, it reduces to the Fradkin-Tseytlin counterterm modulo an additional constraint. |
topic |
Anomalies in Field and String Theories Superstrings and Heterotic Strings Superspaces Superstring Vacua |
url |
http://link.springer.com/article/10.1007/JHEP05(2019)063 |
work_keys_str_mv |
AT wolfgangmuck generalizedsupergravityequationsandgeneralizedfradkintseytlincounterterm |
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