Single intermediate-mass black hole mergers detected by next-generation observatories cannot pin down progenitor cluster mass or radius because of model degeneracy, but formation redshift posteriors are narrow enough to potentially reconstruct cluster formation history from a population.
Kinematic Masses of Super Star Clusters in M82 from High-Resolution Near-Infrared Spectroscopy
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abstract
Using high-resolution (R~22,000) near-infrared (1.51 -- 1.75 microns) spectra from Keck Observatory, we measure the kinematic masses of two super star clusters in M82. Cross-correlation of the spectra with template spectra of cool evolved stars gives stellar velocity dispersions of sigma_r=15.9 +/- 0.8 km/s for MGG-9 and sigma_r=11.4 +/- 0.8 km/s for MGG-11. The cluster spectra are dominated by the light of red supergiants, and correlate most closely with template supergiants of spectral types M0 and M4.5. We fit King models to the observed profiles of the clusters in archival HST/NICMOS images to measure the half-light radii. Applying the virial theorem, we determine masses of 1.5 +/- 0.3 x 10^6 M_sun for MGG-9 and 3.5 +/- 0.7 x 10^5 M_sun for MGG-11. Population synthesis modelling suggests that MGG-9 is consistent with a standard initial mass function, whereas MGG-11 appears to be deficient in low-mass stars relative to a standard IMF. There is, however, evidence of mass segregation in the clusters, in which case the virial mass estimates would represent lower limits.
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Gravitational wave inference of star cluster properties from intermediate-mass black hole mergers
Single intermediate-mass black hole mergers detected by next-generation observatories cannot pin down progenitor cluster mass or radius because of model degeneracy, but formation redshift posteriors are narrow enough to potentially reconstruct cluster formation history from a population.