Soft SUSY breaking terms for chiral matter in IIB string compactifications

Joseph P. Conlon, Shehu S. Abdussalam, Fernando Quevedo, Kerim Suruliz

Research output: Contribution to journalArticlepeer-review

Abstract

This paper develops the computation of soft supersymmetry breaking terms for chiral D7 matter fields in IIB Calabi-Yau flux compactifications with stabilised moduli. We determine explicit expressions for soft terms for the single-modulus KKLT scenario and the multiple-moduli large volume scenario. In particular we use the chiral matter metrics for Calabi-Yau backgrounds recently computed in hep-th/0609180. These differ from the better understood metrics for non-chiral matter and therefore give a different structure of soft terms. The soft terms take a simple form depending explicitly on the modular weights of the corresponding matter fields. For the large-volume case we find that in the simplest D7 brane configuration, scalar masses, gaugino masses and A-terms are very similar to the dilaton-dominated scenario. Although all soft masses are suppressed by ln (MP/m3/2) compared to the gravitino mass, the anomaly-mediated contributions do not compete, being doubly suppressed and thus subdominant to the gravity-mediated tree-level terms. Soft terms are flavour-universal to leading order in an expansion in inverse Kähler moduli. They also do not introduce extra CP violating phases to the effective action. We argue that soft term flavour universality should be a property of the large-volume compactifications, and more generally IIB flux models, in which flavour is determined by the complex structure moduli while supersymmetry is broken by the Kähler moduli. For the simplest large-volume case we run the soft terms to low energies and present some sample spectra and a basic phenomenological analysis.

Original languageEnglish (US)
Article number032
JournalJournal of High Energy Physics
Volume2007
Issue number1
DOIs
StatePublished - Jan 1 2007

Keywords

  • Superstring vacua
  • Superstrings and heterotic strings
  • Supersymmetry breaking
  • Supersymmetry phenomenology

ASJC Scopus subject areas

  • Nuclear and High Energy Physics

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