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Mass spectrum of type IIB flux compactifications -- comments on AdS vacua and conformal dimensions

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arxiv 2210.04528 v1 pith:NBTAW3JL submitted 2022-10-10 hep-th

Mass spectrum of type IIB flux compactifications -- comments on AdS vacua and conformal dimensions

classification hep-th
keywords conformaldimensionsmassvacuacompactificationsfluxgeneralmoduli
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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In this note we study the mass spectrum of type IIB flux compactifications. We first give a general discussion of the mass matrix for F-term vacua in four-dimensional N=1 supergravity theories and then specialize to type IIB Calabi-Yau orientifold compactifications in the presence of geometric and non-geometric fluxes. F-term vacua in this setting are in general AdS$_4$ vacua for which we compute the conformal dimensions of operators dual to the scalar fields. For the mirror-dual of the DGKT construction we find that one-loop corrections to the complex-structure moduli space lead to real-valued conformal dimensions - only when ignoring these corrections we recover the integer values previously reported in the literature. For an example of a flux configurations more general than the DGKT mirror we also obtain non-integer conformal dimensions. Furthermore, we argue that stabilizing moduli in asymptotic regions of moduli space implies that at least one of the mass eigenvalue diverges.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score.

  1. $\mathcal{N}=1$ spectra, cubic couplings and the rigid fate of DGKT

    hep-th 2026-07 unverdicted novelty 7.0

    DGKT vacua satisfy the holographic cubic coupling constraint if and only if the Calabi-Yau threefold is rigid (h^{2,1}=0).

  2. Broken and restored: a holographic constraint for AdS vacua with orbifolds

    hep-th 2026-05 unverdicted novelty 5.0

    Holographic constraint on AdS vacua is violated for Z2 orbifolds but restored by non-abelian extensions, implying O-planes cannot wrap cycles in distinct homology classes.