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J. R. Li

Publications and source records attributed to J. R. Li.

3 recordsLinked to original sources

The mass-metallicity relation of Lyman-break analogues and its dependence on galaxy properties

We investigate the mass-metallicity relation and its dependence on galaxy physical properties with a sample of 703 Lyman-break analogues (LBAs) in local Universe, which have similar properties to high redshift star-forming galaxies. The sample is selected according to $\ha$ luminosity, $L(\ha)>10^{41.8}\,{\rm erg\,s^{-1}}$, and surface brightness, $I(\ha)>10^{40.5}\,{\rm erg\,s^{-1}\,kpc^{-2}}$, criteria. The mass-metallicity relation of LBAs harmoniously agrees with that of star-forming galaxies at $z \sim$ 1.4-1.7 in stellar mass range of $10^{8.5}M_{\odot}<M_{*}<10^{11}M_{\odot}$. The relation between stellar mass, metallicity and star formation rate of our sample is roughly consistent with the local fundamental metallicity relation. We find that the mass-metallicity relation shows a strong correlation with the 4000Å\, break; galaxies with higher 4000Å\, break typically have higher metallicity at a fixed mass, by 0.06 dex in average. This trend is independent of the methodology of metallicity. We also use the metallicity estimated by $T_{\rm e}$-method to confirm it. The scatter in mass-metallicity relation can be reduced from 0.091 to 0.077 dex by a three-dimensional relation between stellar mass, metallicity and 4000Å\, break. The reduction of scatter in mass-metallicity relation suggests that the galaxy stellar age plays an important role as the second parameter in the mass-metallicity relation of LBAs.

astro-ph.GA

XXZ-type Bethe ansatz equations and quasi-polynomials

We study solutions of the Bethe ansatz equation for the XXZ-type integrable model associated with the Lie algebra sl_N. We give a correspondence between solutions of the Bethe ansatz equations and collections of quasi-polynomials. This extends the results of E.Mukhin and A.Varchenko for the XXX-type model and the trigonometric Gaudin model.

math.QA

Effect of r-mode instability on the evolution of isolated strange stars

We studied the evolution of isolated strange stars synthetically, considering the influence of {\it r-}mode instability. Our results show that the cooling of strange stars with non-ultra strong magnetic fields is delayed by the heating due to the {\it r-}modes damping during million years, while the spin-down of the stars is dominated by gravitational radiation. Especially for the strange stars in a possible existing color-flavor locked phase, the effect of the {\it r-}mode instability on the evolution of the stars becomes extremely important since the viscosity, the neutrino emissivity, and the specific heat involving paring quarks are blocked. It leads to the cooling of these color superconducting stars is very slow, and the stars can remain high temperature within million years differing completely from previous understanding. In this case, a strange star in color-flavor locked phase can be located at the bottom of its {\it r-}mode instability window for a long time, but does not spin down to a very low frequency within hours.

astro-ph