Holographic U (1)R Multiplets

Anatoly Dymarsky, Dmitry Melnikov

Research output: Contribution to journalArticlepeer-review

Abstract

In this communication we report on the results of the study of the holographic dual for the anomaly and gravity N = 1 multiplets in the baryonic branch generalization of the Klebanov-Strassler background. We present the equation for the transverse vector glueball in KS case. The spectrum of low lying excitations coincides with the spectrum of the traceless graviton. The anomalous longitudinal part of the the current is degenerate with the scalar glueball, that is a perturbation of the trace of the metric. The latter glueballs are lighter than the gravity multiplet everywhere on baryonic branch.

Original languageEnglish
Pages (from-to)300-301
Number of pages2
JournalNuclear Physics B - Proceedings Supplements
Volume171
Issue numberSPEC. ISS.
DOIs
StatePublished - Sep 2007

Bibliographical note

Funding Information:
This work was partly supported by Rus sian Federal Agency of Atomic Energy; by the Council of the President of the Russian Federation for Support of Leading Scientific Schools NSh-8004.2006.2, and by the grants NSF PHY-0243680, RFBR 07-02-00878 (A.D.) and DOE DE-FG02-96ER40949, RFBR 07-02-01161 (D.M.).

Funding

This work was partly supported by Rus sian Federal Agency of Atomic Energy; by the Council of the President of the Russian Federation for Support of Leading Scientific Schools NSh-8004.2006.2, and by the grants NSF PHY-0243680, RFBR 07-02-00878 (A.D.) and DOE DE-FG02-96ER40949, RFBR 07-02-01161 (D.M.).

FundersFunder number
Council of the President of the Russian Federation for Support of Leading Scientific SchoolsNSh-8004.2006.2
National Science Foundation (NSF)PHY-0243680, RFBR 07-02-00878
Michigan State University-U.S. Department of Energy (MSU-DOE) Plant Research LaboratoryDE-FG02-96ER40949, 07-02-01161
Federal Agency of Atomic Energy of the Russian Federation

    ASJC Scopus subject areas

    • Atomic and Molecular Physics, and Optics
    • Nuclear and High Energy Physics

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