Published August 2007 | Version v1
Journal article

Geometry of all supersymmetric type I backgrounds

  • 1. Fundamental Physics, Chalmers University of Technology, SE-412 96 Goeteborg (Sweden)
  • 2. Department of Mathematics, King's College London, Strand, London WC2R 2LS (United Kingdom)
  • 3. Departament Estructura i Constituents de la Materia, Facultat de Fisica, Universitat de Barcelona, Diagonal 647, 08028 Barcelona (Spain)

Description

We find the geometry of all supersymmetric type I backgrounds by solving the gravitino and dilatino Killing spinor equations, using the spinorial geometry technique, in all cases. The solutions of the gravitino Killing spinor equation are characterized by their isotropy group in Spin(9, 1), while the solutions of the dilatino Killing spinor equation are characterized by their isotropy group in the subgroup Σ(P) of Spin(9, 1) which preserves the space of parallel spinors P. Given a solution of the gravitino Killing spinor equation with L parallel spinors, L = 1, 2, 3, 4, 5, 6, 8, the dilatino Killing spinor equation allows for solutions with N supersymmetries for any 0 < N ≤ L. Moreover for L = 16, we confirm that N = 8, 10, 12, 14, 16. We find that in most cases the Bianchi identities and the field equations of type I backgrounds imply a further reduction of the holonomy of the supercovariant connection. In addition, we show that in some cases if the holonomy group of the supercovariant connection is precisely the isotropy group of the parallel spinors, then all parallel spinors are Killing and so there are no backgrounds with N < L supersymmetries

Additional details

Publishing Information

Journal Title
Journal of High Energy Physics
Journal Volume
8
Journal Issue
2007
Journal Page Range
p. 074
ISSN
1126-6708

INIS

Country of Publication
Italy
Country of Input or Organization
International Atomic Energy Agency (IAEA)
INIS RN
39040802
Subject category
S72: PHYSICS OF ELEMENTARY PARTICLES AND FIELDS;
Descriptors DEI
FIELD EQUATIONS; GEOMETRY; ISOTROPY; MATHEMATICAL SOLUTIONS; QUANTUM FIELD THEORY; SPIN; SPINORS; SUPERSYMMETRY
Descriptors DEC
ANGULAR MOMENTUM; EQUATIONS; FIELD THEORIES; MATHEMATICS; PARTICLE PROPERTIES; SYMMETRY