Showing posts with label constellation Pictor. Show all posts
Showing posts with label constellation Pictor. Show all posts

Monday, March 23, 2026

Extremely Rare Second-Generation Star Discovered Inside Ancient Relic Dwarf Galaxy

PR Image noirlab2607a
Pictor II ultra-faint dwarf galaxy

PR Image noirlab2607b
Star PicII-503 in Pictor II ultra-faint dwarf galaxy

PR Image noirlab2607c
Star PicII-503 in Pictor II ultra-faint dwarf galaxy

PR Image noirlab2607d
Galactic Center Illuminates Cerro Tololo’s Blanco 4-Meter Telescope

PR Image noirlab2607e
Víctor M. Blanco 4-meter Telescope with DECam

PR Image noirlab2607f
Pictor (Annotated)




The star is the first unambiguous example of chemical enrichment by the first stars in the Universe within a primordial environment

Discovered in the Pictor II dwarf galaxy, star PicII-503 has an extreme deficiency in iron — less than 1/40,000th of the Sun. This signature makes it the clearest example of a star within a primordial system that preserves the chemical enrichment of the Universe’s first stars. PicII-503 also has an extreme overabundance of carbon, providing the missing link to connect carbon-enhanced stars observed in the Milky Way halo to an origin in ancient dwarf galaxies.

Astronomers have discovered one of the most chemically primitive stars ever identified — an ancient stellar relic that preserves the chemical imprint of the very first stars in the Universe. This star, named PicII-503, resides in the tiny, ultra-faint dwarf galaxy Pictor II. The discovery was enabled by the U.S. Department of Energy-fabricated Dark Energy Camera (DECam), mounted on the U.S. National Science Foundation Víctor M. Blanco 4-meter Telescope, at NSF Cerro Tololo Inter-American Observatory (CTIO) in Chile, a Program of NSF NOIRLab.

Pictor II is located in the constellation Pictor. It contains several thousand stars and is more than ten billion years old. PicII-503 lies on the outskirts of the galaxy, and it contains less iron than any other star ever measured outside of the Milky Way, while also having an extreme overabundance of carbon. These signatures unmistakably match those of carbon-enhanced stars found in the outer reaches of the Milky Way, whose origins have, until now, been a mystery.

The study was led by Anirudh Chiti, Brinson Prize Fellow at Stanford University, and the results are presented in a paper appearing in Nature Astronomy.

The first stars in the Universe formed from gas that contained only the simple elements, hydrogen and helium. Within their fiery cores, this first generation of stars created the first elements heavier than helium, such as carbon and iron, which astronomers refer to as “metals.” When these stars exploded, they released their heavy elements into the interstellar medium to be recycled into the next generation of stars.

Second-generation stars are like time capsules, preserving the low amounts of heavy elements released during the explosive deaths of first-generation stars. By searching for these rare, low-metallicity stars and deriving their chemistry, scientists can better understand the mechanisms of initial element production in the Universe.

PicII-503 is the first unambiguous example of a second-generation star in an ultra-faint dwarf galaxy. It was uncovered in data from the DECam MAGIC (Mapping the Ancient Galaxy in CaHK) survey, a 54-night observing program designed to identify the oldest and most chemically primitive stars in the Milky Way and its dwarf galaxy companions. Using a specialized narrow-band filter sensitive to calcium absorption features, astronomers were able to estimate the metal content of thousands of stars from imaging data alone.

Among the hundreds of stars near Pictor II, MAGIC data singled out PicII-503 as an exceptionally metal-poor candidate, allowing researchers to target it for detailed follow-up study. “Without data from MAGIC, it would have been impossible to isolate this star among the hundreds of other stars in the vicinity of the Pictor II ultra-faint dwarf galaxy,” says Chiti.

By combining data from MAGIC, the Magellan/Baade Telescope, and ESO’s Very Large Telescope, the team found that PicII-503 has the lowest iron and calcium abundances ever measured outside of the Milky Way. This paucity of iron and calcium makes it the first object that clearly preserves enrichment from the first stars in a relic dwarf galaxy.

“Discovering a star that unambiguously preserves the heavy metals from the first stars was at the edge of what we thought possible, given the extreme rarity of these objects,” says Chiti. “With the lowest iron abundance ever derived in any ultra-faint dwarf galaxy, PicII-503 provides a window into initial element production within a primordial system that is unprecedented.”

Even more remarkably, the team discovered that PicII-503 has a carbon-to-iron ratio that is over 1500 times that of the Sun. This overabundance matches the distinct carbon signature of low-iron stars long observed in the Milky Way halo. These are known as carbon-enhanced metal-poor stars, and their origin has remained unknown until now.

One hypothesis is that carbon-enhanced metal-poor stars are second-generation stars that preserve the chemical elements produced by low-energy supernovae of first-generation stars. During this process, heavy elements that form close to the star’s interior, like iron, fall back into the remnant compact object, while lighter elements that are near the star’s outer regions, like carbon, are ejected into the interstellar medium to seed the formation of the next generation of stars.

PicII-503 supports the low-energy supernovae explanation because it is found in one of the smallest dwarf galaxies that we know of. If the supernova that produced the metals found in PicII-503 was high-energy, then the elements would have escaped the gravitational pull of the small Pictor II dwarf galaxy. PicII-503 also demonstrates that the carbon-enhanced metal-poor stars observed in the Milky Way halo likely originated from ancient relic dwarf galaxies that have, over time, merged with ours.

“What excites me the most is that we have observed an outcome of the very initial element production in a primordial galaxy, which is a fundamental observation!” says Chiti. “It also cleanly connects to the signature that we have seen in the lowest-metallicity Milky Way halo stars, tying together their origins and the first-star-enriched nature of these objects.”

“Discoveries like this are cosmic archaeology, uncovering rare stellar fossils that preserve the fingerprints of the Universe’s first stars,” says Chris Davis, NSF Program Director for NOIRLab. “We look forward to many more discoveries with the start of the NSF–DOE Rubin Observatory’s Legacy Survey of Space and Time later this year.”

PicII-503 offers a rare, direct glimpse into the Universe’s first chapter of chemical evolution, which is a foundational moment that ultimately set the stage for planets, chemistry, and life itself. It also connects long-standing mysteries about ancient stars in the Milky Way to their origins in primordial dwarf galaxies.




More information

This research was presented in a paper titled “Enrichment by the first stars in a relic dwarf galaxy” appearing in Nature Astronomy. DOI: 10.1038/s41550-026-02802-z

The team is composed of A. Chiti (Stanford University/University of Chicago/Brinson Prize Fellow, USA) , V. M. Placco (NSF NOIRLab, USA), A. B. Pace (University of Virginia, USA), A. P. Ji (University of Chicago/NSF-Simons AI Institute for the Sky, USA), D. S. Prabhu (University of Arizona, USA), W. Cerny (Yale University, USA), G. Limberg (University of Chicago, USA), G. S. Stringfellow (Yale University, USA), A. Drlica-Wagner (Fermi National Accelerator Laboratory/Stanford University/University of Chicago/NSF-Simons AI Institute for the Sky, USA), K. R. Atzberger (University of Virginia, USA), Y. Choi (NSF NOIRLab, USA), D. Crnojević (University of Tampa, USA), P. S. Ferguson (University of Washington, USA), N. Kallivayalil (University of Virginia, USA), N. E. D. Noël (University of Surrey, UK), A. H. Riley (Durham University, UK/Lund University, Sweden), D. J. Sand (University of Arizona, USA), J. D. Simon (Observatories of the Carnegie Institution for Science, USA), A. R. Walker (Cerro Tololo Inter-American Observatory/NSF NOIRLab, Chile), C. R. Bom (Centro Brasileiro de Pesquisas Físicas, Brazil), J. A. Carballo-Bello (Universidad de Tarapacá, Chile), D. J. James (ASTRAVEO LLC, Applied Materials Inc., USA), C. E. Martínez-Vázquez (NSF NOIRLab, USA), G. E. Medina (University of Toronto, Canada), K. Vivas (NSF NOIRLab, Chile).

NSF NOIRLab, the U.S. National Science Foundation center for ground-based optical-infrared astronomy, operates the International Gemini Observatory (a facility of NSF, NRC–Canada, ANID–Chile, MCTIC–Brazil, MINCyT–Argentina, and KASI–Republic of Korea), NSF Kitt Peak National Observatory (KPNO), NSF Cerro Tololo Inter-American Observatory (CTIO), the Community Science and Data Center (CSDC), and NSF–DOE Vera C. Rubin Observatory (in cooperation with DOE’s SLAC National Accelerator Laboratory). It is managed by the Association of Universities for Research in Astronomy (AURA) under a cooperative agreement with NSF and is headquartered in Tucson, Arizona.

The scientific community is honored to have the opportunity to conduct astronomical research on I’oligam Du’ag (Kitt Peak) in Arizona, on Maunakea in Hawai‘i, and on Cerro Tololo and Cerro Pachón in Chile. We recognize and acknowledge the very significant cultural role and reverence of I’oligam Du’ag to the Tohono O’odham Nation, and Maunakea to the Kanaka Maoli (Native Hawaiians) community.



Links



Contacts:

Anirudh Chiti
Brinson Prize Fellow
Stanford University
Email:
achiti@stanford.edu

Josie Fenske
Public Information Officer
NSF NOIRLab
Email:
josie.fenske@noirlab.edu


Tuesday, March 17, 2026

NASA Discovers Crash of Extreme Stars in Unexpected Site

GRB 230906A
Credit: X-ray: NASA/CXC/Penn State Univ./S. Dichiara; IR: NASA/ESA/STScI; Illustration: ERC BHianca 2026 / Fortuna and Dichiara, CC BY-NC-SA 4.0; Image Processing: NASA/CXC/SAO/P. Edmonds




  • Astronomers have spotted a collision between two neutron stars in an environment unlike any other seen before.

  • This event called GRB 230906A is likely seen in a tiny galaxy in a stream of gas located about 4.7 billion light-years from Earth.

  • The discovery of this neutron star collision may explain the presence of gold and platinum in intergalactic space.

  • To find this event and identify its true nature, astronomers used multiple telescopes including Chandra, Fermi, Swift, and Hubble.



This graphic depicts the likely discovery of a collision between two neutron stars, made by NASA’s Chandra X-ray Observatory and other telescopes, in a tiny galaxy buried in a huge stream of gas, as described in our latest press release. This is the first time that a neutron star collision has been spotted in such a setting.

Neutron stars are the ultra-dense remnants left behind after massive stars collapse. When neutron stars occasionally collide with one another, they can produce important elements like gold and platinum and generate gravitational waves that ripple across space. This latest discovery may help solve open questions as to how those precious elements are sometimes outside galaxies as well as how some gamma-ray bursts mysteriously do not appear to be associated with a known galaxy.

Two artist’s illustrations — one in the main panel and the other on the bottom left — depict what astronomers think is happening in the event. Known as GRB 230906A, this event was first picked up by NASA’s Fermi Gamma-ray Space Telescope in September 2023. Astronomers then used the Neil Gehrels Swift Observatory to provide a more accurate position followed by observations with Chandra and the Hubble Space Telescope.

The Chandra data, shown in the inset to the upper left of the graphic, gave the researchers an even more accurate position for the GRB, and once Chandra told them exactly where to look, the researchers then used Hubble to reveal a tiny, extremely faint galaxy at that position.

The tiny galaxy that hosted this neutron star collision is located about 4.7 billion light-years away, embedded within a stream of gas that stretches some 600,000 light-years long. (For context, our Milky Way galaxy is about 100,000 light-years across.) This stream was likely created when a group of galaxies collided hundreds of millions of years ago, stripping gas and dust from the galaxies and tossing it into intergalactic space. The artist’s illustration in the main panel shows members of the galaxy group in yellow and orange and tidal streams around the galaxies in blue.

Once these galaxies collided, it likely triggered a wave of star formation that, over hundreds of millions of years, led to the birth and eventual collision of these neutron stars. The artist’s illustration in the inset to the lower left shows a view from the side of what the aftermath of a neutron star collision might look like. The GRB was detected by viewing it down the barrel of the jet.

The unusual location of GRB 230906A may also help explain how astronomers have spotted elements like gold and platinum in stars at relatively large distances from the centers of galaxies. Such stars are generally expected to be older and to have formed from gas that had less time to be enriched in heavy elements from supernova explosions.

Through a chain of nuclear reactions, a collision between two neutron stars can produce heavy elements like gold and platinum, which astronomers witnessed in a much closer collision seen in 2017. Events like GRB 230906A could generate elements like these and spread them throughout the outskirts of galaxies, eventually appearing in future generations of stars.

An alternative identity for the explosion is that it is in a much more distant galaxy that is behind the galaxy group. The team considers this to be a less likely explanation than the tiny galaxy idea.

A paper describing these results has been accepted in The Astrophysical Journal Letters. The authors of the paper are Simone Dichiara (Penn State University), Elena Troja (University of Rome, Italy), Brendan O’Connor (Carnegie Mellon University), Yu-Han Yang (University of Rome), Paz Beniamini (University of Israel), Antonio Galvan-Gamez (National Autonomous University of Mexico), Takanori Sakamoto (Aoyama Gakuin University, Japan), Yuta Kawakubo (Aoyama Gakuin), and Jane Charlton (Penn State).

NASA's Marshall Space Flight Center in Huntsville, Alabama, manages the Chandra program. The Smithsonian Astrophysical Observatory's Chan.dra X-ray Center controls science operations from Cambridge, Massachusetts, and flight operations from Burlington, M,brassachusetts.





Visual Description:

This release features two artist's concepts and a composite image depicting two cosmic collisions that began hundreds of millions of years ago.

At the center of the large artist's concept is a brilliant glowing ball with a nearly white core, and golden orange outer layers. This brilliant ball represents the brightest galaxy in a collision between two groups of galaxies, which began hundreds of millions of years ago. Gas and dust from that collision were tossed into intergalactic space in long tidal streams. In the illustration, the tidal streams resemble swooping blue streaks shooting off the brilliant ball. Near the end of each swooping tidal stream is a glowing orange streak, or ellipse. These glowing shapes are smaller individual galaxies, some of which are revealed to have spiraling arms when examined closely.

One of the tidal streams shoots toward our upper left, then begins to hook back down, passing two glowing orange galaxies along its path. Near the end of this tidal stream is a tiny galaxy and an X-ray source presented in the middle of a close-up insert. In the center of the composite insert, Hubble observations in orange reveal the tiny, faint galaxy buried in the tidal stream. A pool of neon blue haze shows X-rays detected by Chandra from the collision of two ultra-dense neutron stars.

Astronomers believe that the tiny galaxy was born from gas and dust along the 600,000 light-year-long tidal stream, created by the initial collision of the galaxy groups. Over hundreds of millions of years, that material contributed to the birth of many stars within the tiny galaxy. Two of those stars collapsed into neutron stars, and ultimately collided, producing important elements like gold and platinum, and gravitational waves that rippled across space.

The artist's concept in the other insert shows a close-up view from the side of what the aftermath of a neutron star collision might look like. A burst of gamma rays was originally detected by viewing it down the barrel of the jet, which triggered follow-up X-ray observations with Chandra and other X-ray telescopes.



Fast Facts for GRB 230906A:

Credit: X-ray: NASA/CXC/Penn State Univ./S. Dichiara; IR: NASA/ESA/STScI; Illustration: ERC BHianca 2026 / Fortuna and Dichiara, CC BY-NC-SA 4.0; Image Processing: NASA/CXC/SAO/P. Edmonds
Release Date: March 10, 2026
Scale: Image is about 5 arcsec (95,000 light-years) across.
Category: Neutron Stars/X-ray Binaries
Coordinates (J2000): RA 5h 19m 1.8s | Dec -47° 53´ 34.9"
Constellation: Pictor
Observation Dates: September 11, 2023
Observation Time: 18 hours 30 minutes
Obs. ID: 26630
Instrument: ACIS
References: Dichiara, S. et al., 2025, ApJ Letters, Accepted
Color Code: X-ray: blue; Infrared: red
Distance Estimate: About 4.7 billion light-years (z~0.453) from Earth.