English

A species scale-driven breakdown of effective field theory in time-dependent string backgrounds

High Energy Physics - Theory 2025-04-21 v1 Cosmology and Nongalactic Astrophysics General Relativity and Quantum Cosmology High Energy Physics - Phenomenology

Abstract

We present a novel way in which effective field theory (EFT) can break down in cosmological string backgrounds depending on the behavior of the quantum gravity cutoff in infinite distance limits, known as the species scale Λs\Lambda_s. Namely, EFT can break down if the species scale Λs\Lambda_s falls off so rapidly as the Friedmann-Robertson-Walker (FRW) scale factor grows from some initial value aia_i to some final value afa_f that the physical momentum of an initial Hubble-sized perturbation Hi1\sim H_i^{-1} grows to exceed the species scale. For EFT to remain valid, a new condition HiaiafΛs,fH_i \frac{a_i}{a_f} \ll \Lambda_{s,f} must hold, which is distinct from Trans-Planckian conditions discussed in the literature. Using the universal relation mmΛsΛs=1d2\frac{\nabla m}{m} \cdot \frac{\nabla \Lambda_s}{\Lambda_s} = \frac{1}{d-2} in the infinite distance limits of moduli space where mm is the mass scale of the lightest tower and \nabla measures variations with respect to the canonical metric on moduli space, we show that spatially flat FRW solutions in the string landscape violate this condition or at best marginally satisfy it. However, we find that sufficiently large negative spatial curvature always avoids a breakdown. To avoid EFT breakdown, we derive an upper bound on the duration of quasi-de Sitter expansion that classically evolves to decelerated expansion. Our bound is proportional to the Trans-Planckian Censorship Conjecture (TCC) bound, with the advantage that it applies to any FRW solution in the string landscape. Finally, we distinguish EFT breakdown from TCC violation, the latter being a quantum gravity constraint rather than an EFT limitation. Perhaps our most surprising finding is that in any flat FRW solution that develops a weakly coupled string at future infinity the EFT inevitably breaks down.

Keywords

Cite

@article{arxiv.2504.13260,
  title  = {A species scale-driven breakdown of effective field theory in time-dependent string backgrounds},
  author = {Alek Bedroya and Hayden Lee and Paul Steinhardt},
  journal= {arXiv preprint arXiv:2504.13260},
  year   = {2025}
}

Comments

29 pages, 4 figures