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STELLAR CHEMISTRY
Revealing the Origin and Nature of the Outskirts of Stellar Megalopolises
by Staff Writers
Lisbon, Portugal (SPX) Feb 17, 2017


Fernando Buitrago.

Galaxies have dramatically grown in size since the early Universe, and elliptical galaxies, in particular, are the largest galaxies in both size and mass. What is the main driver behind the late growth of their outer parts was the question that motivated this study.

With disc galaxies, like our Milky Way, it is fairly easy to identify their distinct parts: the central bulge, the disc with its spiral arms, and a halo of stars enveloping the whole. Astronomers can tell, for instance, that the stellar halo of a disc galaxy is mostly formed by stars from satellite galaxies that it has swallowed.

For elliptical galaxies, however, this is much harder because these galaxies look much like a smooth, featureless cloud of stars.

Fernando Buitrago (IA and FCUL) says: "With elliptical galaxies, there is direct evidence of merging of satellite galaxies going on, but it is hard to ascertain that the processes that have been happening for these galaxies to grow their outer envelopes are the same that we see occurring in disc galaxies like our own."

Hence, Buitrago and his team set out to investigate the nature of the outskirts of a sample of massive elliptical galaxies from when the Universe was half its current age, roughly 6.2 billion years ago. Focusing their research on faint features at great distances from the galactic centre, they could only work with the deepest ever image of the Universe, the Hubble Ultra Deep Field [3] (HUDF).

Using the six galaxies that matched their criteria and are recorded in this image, the researchers were able to demonstrate for the first time the existence of extended stellar envelopes in individual massive elliptical galaxies at that period in time.

The quality of the information collected in the HUDF, enabled the team to characterise the individual galactic haloes and to place them in the context of the evolutionary history of this type of galaxies.

Moreover, Buitrago and his team concluded that, for their sample of massive elliptical galaxies at half the age of the Universe, the outer parts were, like in disc galaxies, formed mainly due to the merging of other galaxies. They even attempted to identify in those haloes traces of recent episodes of galactic fusion.

The results emerged from the comparison of the sample with mathematical simulations based on the current model of galaxy formation and evolution.

The team saw that, in this very case, the simulation and the real data matched very well and that it was possible to derive parallelisms.

"In elliptical galaxies, we cannot say 'this is the galactic bulge and this is the halo'," says Buitrago.

"All the stars form a huge spheroid, like an immense rugby ball. But when we use a computer simulation, we can track the origin of every part of the simulated galaxy and compare with our real galaxies. Through this method, we identified the process behind the dramatic increase of these galaxies outer parts, and were able to explain how their size evolves."

The article "The cosmic assembly of stellar haloes in massive Early-Type Galaxies" was published online on January 9, 2017, in the journal Monthly Notices of the Royal Astronomical Society, 2017 stw3382.


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