Scale-dependent bias of galaxies and mu-type distortion of the cosmic microwave background spectrum from single-field inflation with a modified initial state
Jonathan Ganc, Eiichiro Komatsu

TL;DR
This paper explores how modifications to the initial quantum state during single-field inflation can produce observable signatures in large-scale structure bias and mu-type distortions in the CMB spectrum, offering potential tests of early universe physics.
Contribution
It introduces a parametrization of initial state modifications in single-field inflation and predicts distinctive scale-dependent biases and spectral distortions that can be detected by upcoming experiments.
Findings
A k^-3 scale-dependent bias signature in large-scale structure.
Enhanced mu-type distortion signals due to initial state modifications.
Detectability of these signals by PIXIE and other calibrated experiments.
Abstract
We investigate the phenomenological consequences of a modification of the initial state of a single inflationary field. While single-field inflation with the standard Bunch-Davies initial vacuum state does not generally produce a measurable three-point function (bispectrum) in the squeezed configuration, allowing for a non-standard initial state produces an exception. Here, we calculate the signature of an initial state modification in single-field slow-roll inflation in both the scale-dependent bias of the large-scale structure (LSS) and mu-type distortion in the black-body spectrum of the cosmic microwave background (CMB). We parametrize the initial state modifications and identify certain choices of parameters as natural, though we also note some fine-tuned choices that can yield a larger bispectrum. In both cases, we observe a distinctive k^-3 signature in LSS (as opposed to k^-2…
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