UDFy-38135539


UDFy-38135539 is the Hubble Ultra Deep Field identifier for a galaxy which was calculated to have a light travel time of 13.1 billion years with a present proper distance of around 30 billion light-years.
It was discovered by three teams in September 2009 in sensitive infrared Hubble Space Telescope images and identified by these as source UDF-38135539 source HUDF.YD3 and source 1721, and additionally reported in the Astrophysical Journal, and the Monthly Notices of the Royal Astronomical Society. All teams independently identified the source likely an extremely distant galaxy because there was no measurable light at visible wavelengths. Following the discovery of this candidate distant galaxy, another team targeted this object with ground-based spectroscopy to confirm the distance, reporting a redshift z=8.6.
However, attempts to replicate this observation strongly suggest the original claim was in error, meaning that at the present time the galaxy only has a photometric redshift estimate.

Detection

Its first known imaging was in Hubble telescope's Hubble Ultra Deep Field, the most detailed deep space picture at that time. The galaxy was observed in August and September 2009. The image data was released to the scientific community, which led to the galaxy's detection by the teams of Bouwens, Bunker and McLure, and subsequent spectroscopic campaign by the team of Lehnert and colleagues.
Just on Hubble data, the galaxy could be an object intrinsically red and relatively close to Earth, therefore, confirmation using suitably sensitive spectroscopic equipment was needed. This was attempted using the European Southern Observatory's SINFONI-equipped Very Large Telescope unit Yepun, located atop Cerro Paranal in Chile's Atacama Desert. Lehnert's team observed the galaxy for 16 hours, and then analysed their results over 2 months, and published their findings in Nature, in October 2010.
Since then, more sensitive measurements have failed to replicate the result, suggesting the spectroscopic claim was in error.

Characteristics

The galaxy is located in the constellation Fornax, and is estimated to have contained roughly a billion stars, although it was only at most one tenth of the diameter of our own galaxy, the Milky Way, and had less than 1% of the mass of the Milky Way's stars. According to Lehnert, it was forming the same number of stars per year as our galaxy, but they were much smaller and less massive, making it "intensely star forming".
The light travel distance of the light that we observe from UDFy-38135539 is more than 4 billion parsecs, and it has a luminosity distance of 86.9 billion parsecs. There are a number of different distance measures in cosmology, and both "light travel distance" and "luminosity distance" are different from the comoving distance or "proper distance" generally used in defining the size of the observable universe. The luminosity distance DL is related to a factor called the "comoving transverse distance" DM by the equation, where z is the redshift, and the comoving transverse distance is itself equal to the radial comoving distance in a spatially flat universe. So with and, the comoving distance would be about 9.1 billion parsecs.
The infrared light that we now observe from the galaxy was emitted as ultraviolet radiation toward the end of an era when the universe was filled with atomic hydrogen, which absorbed at ultraviolet wavelengths. Because the galaxy's own light alone would not have been intense enough to ionize a large region and render it transparent, scientists suspect that a population of smaller, undetected galaxies, contributed to the reionization making UDFy-38135539 visible.

Significance

The period of universal star birth was the reionization epoch. The universe's first stars were massive, ionizing hydrogen in the surrounding environment.
UDFy-38135539 is thought to be one of the first galaxies observed in the reionization epoch. Caltech astronomer Brant Robertson, commenting on the study, stated that the "galaxy happens to reside at a very special time in cosmic history when the properties of gas in the universe were changing rapidly, and therefore this galaxy and others like it may teach us a lot about the early history of the universe". Michele Trenti, an astronomer who was not involved in the study but provided commentary published with the report, says that the discovery of the distant galaxy represents a

Subsequent discoveries

Scientists hope to find older galaxies; however, closer to the Big Bang, fewer exist and they are dimmer on average. They will therefore be increasingly difficult to find, since they would be very faint with fewer observable stars. Trenti says that new "most distant" record holders will soon be announced, but only incremental distance gains will be realized until NASA's James Webb Space Telescope becomes operational in 2021.
The James Webb telescope should be able to detect galaxies more than 13.4 billion light years away, less than 300 million years after the Big Bang. Bremer states that it, and eventually the European Extremely Large Telescope, which will have a mirror five times the diameter of Yepun's, and is tentatively scheduled for first light in 2024, will enable more detailed study of galaxies at such great distances. Lehnert states that this discovery is not "the limit, perhaps not even that close to it".
At that time, Trenti said redshift 8.6 would likely to be as high as we can reach with the current generation of Earth-bound telescopes, but that with Hubble, "it might be possible to find some galaxies up to redshift 10". Candidates with higher redshifts than UDFy-38135539's have been reported subsequently, but not yet confirmed with light spectrum instruments., for example UDFj-39546284 and MACS0647-JD.