Inflation, Open Universes, and Dark Energy
Anton Chudaykin, Mikhail M. Ivanov, Renata Kallosh, Andrei Linde, Oliver H. E. Philcox, Yusuke Yamada
arXiv:2607.28445v1 Announce Type: new
Abstract: We study the impact of spatial curvature ($Omega_k$) and dynamical dark energy (parametrized by $w_0$ and $w_a$) on the spectral index $n_s$ using a combination of cosmic microwave background datasets (Planck, SPT, and ACT), and spectroscopic galaxy samples from DESI, including both BAO and full-shape clustering measurements. We show that a small negative curvature, $Omega_ksimeq 3times 10^{-3}$, lowers the value of $n_s$, bringing it closer to predictions of the Starobinsky, Higgs, and simplest $alpha$-attractor inflationary models. In particular, we find $n_s= 0.9667pm0.0041$ (using Planck and DESI data) or $n_s= 0.9692pm0.0035$ (adding ACT and SPT). Allowing for time-evolving dark energy also reduces the spectral index, leading to $n_s=0.9716pm0.0032$ (from the combined dataset), or $n_s=0.9694pm0.0035$ in combination with a small negative curvature. Our results demonstrate that the tension between current observational data and the Starobinsky, Higgs, and simplest $alpha$-attractor models holds only for $Lambda$CDM, and can be mitigated in extended cosmological models. We discuss implications of these findings for inflationary models in an open universe and/or with dynamical dark energy, including scenarios with quantum tunneling and non-standard topology. Furthermore, we briefly describe a special class of $alpha$-attractor models, where one can make $n_s$ arbitrarily large, and we describe the $alpha$-attractor quintessence model. Such models may be of particular relevance when future data from DESI, as well as DESI-II, SPHEREx, Euclid, Rubin, and Roman, becomes available.arXiv:2607.28445v1 Announce Type: new
Abstract: We study the impact of spatial curvature ($Omega_k$) and dynamical dark energy (parametrized by $w_0$ and $w_a$) on the spectral index $n_s$ using a combination of cosmic microwave background datasets (Planck, SPT, and ACT), and spectroscopic galaxy samples from DESI, including both BAO and full-shape clustering measurements. We show that a small negative curvature, $Omega_ksimeq 3times 10^{-3}$, lowers the value of $n_s$, bringing it closer to predictions of the Starobinsky, Higgs, and simplest $alpha$-attractor inflationary models. In particular, we find $n_s= 0.9667pm0.0041$ (using Planck and DESI data) or $n_s= 0.9692pm0.0035$ (adding ACT and SPT). Allowing for time-evolving dark energy also reduces the spectral index, leading to $n_s=0.9716pm0.0032$ (from the combined dataset), or $n_s=0.9694pm0.0035$ in combination with a small negative curvature. Our results demonstrate that the tension between current observational data and the Starobinsky, Higgs, and simplest $alpha$-attractor models holds only for $Lambda$CDM, and can be mitigated in extended cosmological models. We discuss implications of these findings for inflationary models in an open universe and/or with dynamical dark energy, including scenarios with quantum tunneling and non-standard topology. Furthermore, we briefly describe a special class of $alpha$-attractor models, where one can make $n_s$ arbitrarily large, and we describe the $alpha$-attractor quintessence model. Such models may be of particular relevance when future data from DESI, as well as DESI-II, SPHEREx, Euclid, Rubin, and Roman, becomes available.
2026-07-31
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