Probing the Early Universe with the CMB Scalar, Vector and Tensor Bispectrum
Maresuke Shiraishi

TL;DR
This paper develops a comprehensive formalism to analyze the CMB bispectrum arising from scalar, vector, and tensor primordial non-Gaussianities, including cases with broken rotational or parity invariance, to better understand early Universe physics.
Contribution
It introduces a general formalism for the CMB bispectrum from all perturbation modes, extending previous scalar-only analyses, and applies it to various non-Gaussian scenarios including parity violation.
Findings
Calculated bispectra from scalar-vector-tensor correlations.
Derived constraints on primordial magnetic fields and non-Gaussian amplitudes.
Explored effects of parity violation on the CMB bispectrum.
Abstract
Although cosmological observations suggest that the fluctuations of seed fields are almost Gaussian, the possibility of a small deviation of their fields from Gaussianity is widely discussed. Theoretically, there exist numerous inflationary scenarios which predict large and characteristic non-Gaussianities in the primordial perturbations. These model-dependent non-Gaussianities act as sources of the Cosmic Microwave Background (CMB) bispectrum; therefore, the analysis of the CMB bispectrum is very important and attractive in order to clarify the nature of the early Universe. Currently, the impacts of the primordial non-Gaussianities in the scalar perturbations, where the rotational and parity invariances are kept, on the CMB bispectrum have been well-studied. However, for a complex treatment, the CMB bispectra generated from the non-Gaussianities, which originate from the vector- and…
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Taxonomy
TopicsCosmology and Gravitation Theories · Geophysics and Gravity Measurements · Astronomy and Astrophysical Research
