We study closed-string moduli stabilization in Higgs-otic inflation in Type IIB orientifold backgrounds with fluxes. In this setup large-field inflation is driven by the vacuum energy of mobile D7-branes. Imaginary selfdual (ISD) three-form fluxes in the background source a μ-term and the necessary monodromy for large field excursions while imaginary anti-selfdual (IASD) three-form fluxes are sourced by non-perturbative contri-butions to the superpotential necessary for moduli stabilization. We analyze Kähler moduli stabilization and backreaction on the inflaton potential in detail. Confirming results in the recent literature, we find that integrating out heavy Kähler moduli leads to a controlled flattening of the inflaton potential. We quantify the flux tuning necessary for stability even during large-field inflation. Moreover, we study the backreaction of supersymmetrically stabilized complex structure moduli and the axio-dilaton in the Kähler metric of the inflaton. Contrary to previous findings, this backreaction can be pushed far out in field space if a similar flux tuning as in the Kähler sector is possible. This allows for a trans-Planckian field range large enough to support inflation.

Higgs-otic Inflation and Moduli Stabilization / Bielleman, Sjoerd; Ibanez, Luis E.; SOARES VERISSIMO GIL PEDRO, FRANCISCO MANUEL; Valenzuela, Irene; Wieck, Clemens. - In: JOURNAL OF HIGH ENERGY PHYSICS. - ISSN 1029-8479. - ELETTRONICO. - 2017:2(2017), pp. 73.1-73.40. [10.1007/JHEP02(2017)073]

Higgs-otic Inflation and Moduli Stabilization

Soares Verissimo Gil Pedro, Francisco;
2017

Abstract

We study closed-string moduli stabilization in Higgs-otic inflation in Type IIB orientifold backgrounds with fluxes. In this setup large-field inflation is driven by the vacuum energy of mobile D7-branes. Imaginary selfdual (ISD) three-form fluxes in the background source a μ-term and the necessary monodromy for large field excursions while imaginary anti-selfdual (IASD) three-form fluxes are sourced by non-perturbative contri-butions to the superpotential necessary for moduli stabilization. We analyze Kähler moduli stabilization and backreaction on the inflaton potential in detail. Confirming results in the recent literature, we find that integrating out heavy Kähler moduli leads to a controlled flattening of the inflaton potential. We quantify the flux tuning necessary for stability even during large-field inflation. Moreover, we study the backreaction of supersymmetrically stabilized complex structure moduli and the axio-dilaton in the Kähler metric of the inflaton. Contrary to previous findings, this backreaction can be pushed far out in field space if a similar flux tuning as in the Kähler sector is possible. This allows for a trans-Planckian field range large enough to support inflation.
2017
Higgs-otic Inflation and Moduli Stabilization / Bielleman, Sjoerd; Ibanez, Luis E.; SOARES VERISSIMO GIL PEDRO, FRANCISCO MANUEL; Valenzuela, Irene; Wieck, Clemens. - In: JOURNAL OF HIGH ENERGY PHYSICS. - ISSN 1029-8479. - ELETTRONICO. - 2017:2(2017), pp. 73.1-73.40. [10.1007/JHEP02(2017)073]
Bielleman, Sjoerd; Ibanez, Luis E.; SOARES VERISSIMO GIL PEDRO, FRANCISCO MANUEL; Valenzuela, Irene; Wieck, Clemens
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