Low-temperature primordial gas in merging halos
arXiv:0807.3417 · doi:10.1002/asna.200711001
Abstract
Thermal regime of the baryons behind shock waves arising in the process of virialization of dark matter halos is governed at cetrain conditions by radiation of HD lines. A small fraction of the shocked gas can cool down to the temperature of the cosmic microwave background (CMB). We estimate an upper limit for this fraction: at it increases sharply from about for dark halos of $M=5\times 10^7\msun$ to for halos with $M=10^8\msun$. Further increase of the halo mass does not lead however to a significant growth of -- the asymptotic value for $M\gg 10^8\msun$ is of 0.3. We estimate star formation rate associated with such shock waves, and show that they can provide a small but not negligible fraction of the star formation. We argue that extremely metal-poor low-mass stars in the Milky Way may have been formed from primordial gas behind such shocks.
7 pages, 5 figures
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