Self-tuning at large (distances): 4D description of runaway dilaton capture
- 1. Division PH-TH, CERN,CH-1211, Genève 23 (Switzerland)
- 2. Perimeter Institute for Theoretical Physics,31 Caroline St. N., Waterloo, N2L 2Y5 ON (Canada)
- 3. Physics & Astronomy, McMaster University,1280 Main St. W., Hamilton, L8S 4M1 ON (Canada)
- 4. Instituut voor Theoretische Fysica, KU Leuven,Celestijnenlaan 200D, B-3001 Leuven (Belgium)
Description
We complete here a three-part study (see also http://arxiv.org/abs/1506.08095 and http://arxiv.org/abs/1508.00856) of how codimension-two objects back-react gravitationally with their environment, with particular interest in situations where the transverse 'bulk' is stabilized by the interplay between gravity and flux-quantization in a dilaton-Maxwell-Einstein system such as commonly appears in higher-dimensional supergravity and is used in the Supersymmetric Large Extra Dimensions (SLED) program. Such systems enjoy a classical flat direction that can be lifted by interactions with the branes, giving a mass to the would-be modulus that is smaller than the KK scale. We construct the effective low-energy 4D description appropriate below the KK scale once the transverse extra dimensions are integrated out, and show that it reproduces the predictions of the full UV theory for how the vacuum energy and modulus mass depend on the properties of the branes and stabilizing fluxes. In particular we show how this 4D theory learns the news of flux quantization through the existence of a space-filling four-form potential that descends from the higher-dimensional Maxwell field. We find a scalar potential consistent with general constraints, like the runaway dictated by Weinberg's theorem. We show how scale-breaking brane interactions can give this potential minima for which the extra-dimensional size, ℓ, is exponentially large relative to underlying physics scales, rB, with ℓ2=rB2e−φ where −φ≫1 can be arranged with a small hierarchy between fundamental parameters. We identify circumstances where the potential at the minimum can (but need not) be parametrically suppressed relative to the tensions of the branes, provide a preliminary discussion of the robustness of these results to quantum corrections, and discuss the relation between what we find and earlier papers in the SLED program.
Availability note (English)
Available from http://dx.doi.org/10.1007/JHEP10(2015)177; Available from http://repo.scoap3.org/record/12464; arXiv:1506.08095Additional details
Identifiers
- URL
- https://repo.scoap3.org/record/12464;
- DOI
- 10.1007/JHEP10(2015)177;
- arXiv
- arXiv:1405.6204v2;
Publishing Information
- Journal Title
- Journal of High Energy Physics (Online)
- Journal Volume
- 2015
- Journal Issue
- 10
- Journal Page Range
- p. 177
- ISSN
- 1029-8479
INIS
- Country of Publication
- Germany
- Country of Input or Organization
- International Atomic Energy Agency (IAEA)
- INIS RN
- 48029490
- Subject category
- S72: PHYSICS OF ELEMENTARY PARTICLES AND FIELDS;
- Descriptors DEI
- BRANES; DILATONS; EINSTEIN-MAXWELL EQUATIONS; FLUX QUANTIZATION; KALUZA-KLEIN THEORY; POTENTIALS; QUANTUM FIELD THEORY; SCALAR FIELDS; SUPERGRAVITY; SUPERSYMMETRY; ULTRAVIOLET RADIATION; VACUUM STATES
- Descriptors DEC
- ELECTROMAGNETIC RADIATION; ELEMENTARY PARTICLES; EQUATIONS; FIELD EQUATIONS; FIELD THEORIES; POSTULATED PARTICLES; RADIATIONS; SYMMETRY; UNIFIED-FIELD THEORIES
Optional Information
- Copyright
- Copyright (c) OPEN ACCESS, © The Authors
- Notes
- PUBLISHER-ID: JHEP10(2015)177; ARXIV:1509.04209; OAI: oai:repo.scoap3.org:12464
- Funding organization
- SCOAP3, CERN, Geneva (Switzerland)