STRING MODELS · Realistic Local Models in Moduli Stabilised String Compactifications
FP7 — People (Marie Curie Actions)
- Duration
- 2010-04-01 → 2012-03-31
- EU contribution
- €164,270
- Participants
- 1
- Scheme
- MC-IIF
Lines connect the coordinator with its partners.
Results in brief
Realistic Local Models in Moduli Stabilised String Compactifications
The goal of the project was to explore the phenomenology in the setting of II B flux compactification. There was progress achieved in both the area of of moduli stabilisation and construction of realistic models. in the area of module stabilisation a new scenario to obtaining de Sitter vacua was proposed. We consider a novel scenario for modulus stabilisation in IIB string compactifications in which the Kahler moduli are stabilised by a general set-up with two kinds of non-perturbative effects: (i) standard Kahler moduli-dependent non-perturbative effects from gauging condensation on D7-branes or E3-instantons wrapping four-cycles in the geometric regime; (ii) dilation-dependent non-perturbative effects from gauging condensation on space-time filling D3-branes or E (-1)-instantons at singularities. For the LARGE Volume Scenario (LVS), the new dilaton-dependent non-perturbative effects provide a positive definite contribution to the scalar potential that can be arbitrarily tuned from fluxes to give rise to de Sitter vacua. Contrary to anti D3-branes at warped throats, this term arises from a manifestly supersymmetric effective action. In this new scenario the "uplifting" term comes from F-terms of blow-up modes resolving the singularity of the non-perturbative quiver. We discuss phenomenological and cosmological implications of this mechanism. This set-up also allows a realisation of the LVS for manifolds with zero or positive Euler number. In the area of constructing the Standard model sector, radioactive generation of Yukawa couplings was studied In the context of D-brane model building, we present a realistic framework for generating fermions masses that are forbidden by global symmetries. We show that the string theoretical Large volume scenario circumvents the standard lore that fermions masses generated by loop effects are too small in generic gravity mediated scenarios. We argue that the fact that in toric singularity models, the up quark masses have always a zero eigenvalue, corresponding to the lightest generation, is due to the presence of approximate global symmetries that we explicitly identify in del Pezzo singularities. These symmetries are broken by global effects and therefore proportional to inverse powers of the volume. We estimate the generic size of radioactive corrections to fermions masses in different phenomenological manifestations of the Large volume scenario. Concrete realisations in terms of flavour violating soft-terms are estimated and contrasted with current bounds on flavour changing neutral currents. Contributions from generic extra Higgs-like fields set bounds on their masses close to the GUT scale to produce realistic fermions masses. A systematic method to study compactification effects in string constructions was proposed We study symmetry breaking effects in local D-brane models that arise as a result of compactification, taking models constructed on C^3/Z_3 as prototype. Zero-modes of the Lichnerowicz operator in cone-like geometries have a power law behaviour; thus the leading symmetry breaking effects are captured by the modes with the lowest scaling dimension which transform non-trivially under the isometric group. Combining this with the fact that global symmetries in local models are gauged upon compactification we determine the strength and form of the leading operators responsible for the symmetry breaking. We find a hierarchical separation in the size of symmetry breaking parameters.
Data: CORDIS, © European Union
Project objective
String theory has the promise to provide answers for many of the puzzles in our current understanding of particle physics and cosmology. In string theory, space time has ten dimensions; four of them corresponding to the dimensions we observe, the six extra dimensions are curled up at an unobservable scale (compactified). One of the long standing problems in string theory was that known solutions for the internal dimension had continuous degeneracies (size and shape of extra dimensions). This predicted massless scalars for our four dimensional universe; in contradiction with observations. Furthermore, this continuous degeneracy implied that the parameters of the standard model - gauge couplings, fermion masses etc., could not be determined. One of the important developments in recent years is the discovery of solutions in which the size and shape of the extra dimensions are fixed (moduli stabilization). Thus we are now in a position to construct and explicitly analyze models of particle physics and cosmology derived from string theory. The project will aim to construct phenomenologically realistic models in this setting. We shall focus on models in which the standard model of particle physics (SM) is localized at a certain singularity in the extra dimension. Many issues of the physics of the SM will be addressed by a local model at the singularity, we shall then attempt at consistent embedding of the local model in a compactification which also gives the ``correct cosmology. We plan to take advantage of recent advances in numerical methods for algebaric geometry to answer various questions considered intractable in the past. The project shall involve interdisciplinary activity in the area of string theory, particle physics, cosmology, algebraic geometry and computational computer science. It will also receive guidance from state of art experiments, the large hadron collider (LHC) at CERN and the PLANCK satellite."
Original text from CORDIS.
Participants
- THE CHANCELLOR MASTERS AND SCHOLARS OF THE UNIVERSITY OF CAMBRIDGE · CAMBRIDGECoordinatorUnited Kingdom
Links
Data: CORDIS, © European Union
