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arXiv · astro-ph/0508010

Perturbations of the Yang-Mills field in the universe

Abstract

It has been suggested that the Yang-Mills (YM) field can be a kind of candidate for the inflationary field at high energy scales or the dark energy at very low energy scales, which can naturally give the equation of state $-1<ω<0$ or $ω<-1$. We discuss the zero order and first order Einstein equations and YM field kinetic energy equations of the free YM field models. From the zero order equations, we find that $ω+1\propto a^{-2}$, from which it follows that the equation of state of YM field always goes to -1, independent of the initial conditions. By solving the first order Einstein equations and YM field equations, we find that in the YM field inflationary models, the scale-invariant primordial perturbation power spectrum cannot be generated. Therefore, only this kind of YM field is not enough to account for inflationary sources. However, as a kind of candidate of dark energy, the YM field has the `sound speed' $c_s^2=-1/3<0$, which makes the perturbation $ϕ$ have a damping behavior at the large scale. This provides a way to distinguish the YM field dark energy models from other kinds of models.

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BibTeXRIS

Wen Zhao. 2009-07-15. Perturbations of the Yang-Mills field in the universe. https://doi.org/10.1088/1674-4527%2F9%2F8%2F003

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