Monodromies and functional determinants in the CFT driven quantum cosmology
Abstract
We apply the monodromy method for the calculation of the functional determinant of a special second order differential operator , , subject to periodic boundary conditions with a periodic zero mode . This operator arises in applications of the early Universe theory and, in particular, determines the one-loop statistical sum for the microcanonical ensemble in cosmology generated by a conformal field theory (CFT). This ensemble realizes the concept of cosmological initial conditions by generalizing the notion of the no-boundary wavefunction of the Universe to the level of a special quasi-thermal state which is dominated by instantons with an oscillating scale factor of their Euclidean Friedmann-Robertson-Walker metric. These oscillations result in the multi-node nature of the zero mode of , which is gauged out from its reduced functional determinant by the method of the Faddeev-Popov gauge fixing procedure. The calculation is done for a general case of multiple nodes (roots) within the period range of the Euclidean time , thus generalizing the previously known result for the single-node case of one oscillation of the cosmological scale factor. The functional determinant of expresses in terms of the monodromy of its basis function, which is obtained in quadratures as a sum of contributions of time segments connecting neighboring pairs of the zero mode roots within the period range.
Cite
@article{arxiv.1111.4474,
title = {Monodromies and functional determinants in the CFT driven quantum cosmology},
author = {A. O. Barvinsky and D. V. Nesterov},
journal= {arXiv preprint arXiv:1111.4474},
year = {2013}
}
Comments
11 pages, final version published in Phys. Rev. DD85, 064006 (2012)