Moduli stabilization in type II Calabi-Yau compactifications at finite temperature
Lihui Liu, Herve Partouche

TL;DR
This paper investigates how finite temperature effects in type II Calabi-Yau compactifications can stabilize all moduli fields by analyzing the thermal effective potential within gauged supergravity, leading to cosmological implications.
Contribution
It demonstrates that thermal effects lift all moduli in type II Calabi-Yau compactifications, providing a mechanism for their stabilization during cosmological evolution.
Findings
All Kahler and complex structure moduli are stabilized at finite temperature.
The stabilized scalars store energy density scaling as T^4, which does not dominate over radiation.
Explicit example with SU(2) gauge theory shows stabilization of Kahler moduli and dual heterotic stabilization.
Abstract
We consider the type II superstring compactified on Calabi-Yau threefolds at finite temperature. The latter is implemented at the string level by a free action on the Euclidean time circle. We show that all Kahler and complex structure moduli involved in the gauge theories geometrically engineered in the vicinity of singular loci are lifted by the stringy thermal effective potential. The analysis is based on the effective gauged supergravity at low energy, without integrating out the BPS states becoming massless at the singular loci. The universal form of the action in the weak coupling regime at low enough temperature is determined in two cases. Namely the conifold locus, as well as a locus where the internal space develops a genus-g curve of A{N-1} singularities, realizing an SU(N) gauge theory coupled to g hypermultiplets in the adjoint. In general, the favored points of…
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