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Star formation in Milky Way's center came in bursts by Staff Writers Heidelberg, Germany (SPX) Dec 17, 2019
Astronomers have uncovered the previously unknown history of the stars near the center of our galaxy. Their work shows that the stars in question formed in two waves: more than 90% of the stars formed at least eight billion years ago. A second batch, responsible for around 5% of the stars, formed in a short amount of time around one billion years ago. Between the two bursts of activity, there was a long quiescent period with hardly any new stars forming at all. The stars in question belong to a dense, disk-shaped region with a diameter of about 1,000 light-years (roughly 1% of the diameter of the Milky Way's majestic disk of stars), known as the nuclear disk. This disk surrounds the Milky Way's innermost nuclear cluster of stars and its central supermassive black hole.
Bursts of Star Formation Activity Notably, it constrains the growth history of our galaxy's central black hole. Gas flowing into the central regions of our galaxy drive both star formation and the increase in central black hole mass. The newly reconstructed star formation history indicates that our central black hole is likely to have reached most of its present mass earlier than eight billion years ago. The brief, but intense burst of star formation activity one billion years ago is likely to be one of the most energetic events in the history of our galaxy. Hundreds of thousands of newly formed massive stars would have exploded as supernovae within millions of years. The results also force astronomers to rethink another fundamental feature of our galaxy. The Milky Way is a barred spiral galaxy, with an elongated region estimated between 3,000 and 15,000 light-years long linking the inner ends of its two major spiral arms. Such bar structures are thought to be very efficient at funneling gas into a galaxy's central region, which would lead to the formation of new stars. The billions of years without star formation in the nuclear galactic disk forces astronomers to rethink this scenario. During those quiet years, gas was evidently not funneled into the galactic center in sufficient amounts. Francisco Nogueras Lara (then Instituto de Astrofisica de Andalucia, now a post-doctoral researcher at MPIA), lead author of the article, says: "Either the galactic bar has come into existence only recently, or such bars are not as efficient in funneling gas as is commonly assumed. In the latter case, some event - like a close encounter with a dwarf galaxy - must have triggered the gas flow towards the galactic center about one billion years ago."
Reconstructing the Formation History of the Galactic Center Whenever many stars have been born at the same time, which is a common occurrence, astronomers can look at the ensemble, plot the star's brightness against the reddishness of their color ("colour-magnitude diagram") and deduce how long ago the ensemble was formed. One among several age indicators is the "red clump" of stars that have already begun to fuse helium in their core regions. From the average brightness of stars in that clump, one can deduce the age of that group of stars.
Challenges of Observing the Galactic Center But then, such observations are bound to see too many stars in the Milky Way's center! The galactic center is very dense, with between a thousand and a hundred thousand stars in a cube with a side-length of one light-year. When astronomers observe very dense star fields of this kind, those stellar disks will overlap in the telescope image. Separating such fields into separate stars is difficult - but necessary if you want to reconstruct the formation history of the galactic center.
The Right Instrument for the Job As Neumayer explains: "We needed a near-infrared instrument with a large field of view, able to observe the Milky Way's central region which is in the Southern Sky. ESO's HAWK-I instrument was ideal for our survey." HAWK-I is an infrared camera at the 8 meter Very Large Telescope at the Paranal Observatory of the European Southern Observatory (ESO) in Chile. For their GALACTICNUCLEUS survey, the astronomers observed the galactic center region with HAWK-I for 16 nights managing to obtain accurate photometry of more than three million stars. Using a special technique known as holographic imaging, the astronomers were able to distinguish between stars as little as 0.2 arcsecond apart. With this accuracy, you could distinguish two one-cent coins viewed from a distance of more than 8 kilometers. Two clearly visible "red clumps" in the resulting colour-magnitude diagram allowed for the reconstruction of the formation history of the galactic nuclear disk. As a next step, the astronomers are now studying the influence of dust on their observations (extinction and reddening). Taking into accounts the effect of dust should allow for even more precise reconstructions of the history of our galaxy's central regions in the future.
Research Reports: "GALACTICNUCLEUS: A High Angular Resolution JHKs Imaging Survey of the Galactic Centre: II. First Data Release of the Catalogue and the Most Detailed CMDs of the GC," and "The Nuclear Disc of the Milky Way: Early Formation, Long Quiescence, and Starburst Activity One Billion Years Ago"
New NASA image provides more details about first observed interstellar comet Los Angeles CA (SPX) Dec 13, 2019 A new image from NASA's Hubble Space Telescope provides important new details about the first interstellar comet astronomers have seen in our solar system. The comet, called Comet 2I/Borisov (the "I" stands for interstellar), was spotted near a spiral galaxy known as 2MASX J10500165-0152029. It was approximately 203 million miles from Earth when the image was taken on Nov. 16. "Data from the Hubble Space Telescope give us the best measure of the size of comet 2I/Borisov's nucleus, which is t ... read more
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