Showing posts with label sednoids. Show all posts
Showing posts with label sednoids. Show all posts

Monday, November 17, 2025

The Sun Left Home in a Hurry

An open star cluster named NGC 2002, as viewed by the Hubble Space Telescope. The Sun may have been born in a similar cluster. Credit:
NASA, ESA and G. Gilmore (University of Cambridge); Processing: Gladys Kober (NASA/Catholic University of America)

By simulating how the orbits of distant solar system objects were altered by close encounters with other stars early in the Sun’s life, astronomers have placed tight constraints on how long our home star stuck around its siblings after birth.

The Hubble Space Telescope’s view of a collection of young stars still embedded within their natal nebula. Credit:
NASA, ESA, G. Duchene (Universite de Grenoble I); Image Processing: Gladys Kober (NASA/Catholic University of America)

Born in Batches

Though our Sun currently travels on a solitary trajectory through the galaxy, its earliest childhood was not spent so lonely. Instead, the Sun was likely born as part of a litter of many other stars all collapsing out of the same cloud of precursor gas and dust. As a consequence, its early adolescence was spent in the company of dozens of other young stars, all zipping along on their own paths, destined to drift apart but initially packed close together.

Despite their kinship, these young stars were not kind to one another when they passed nearby. When two stars grow close, the intense gravity of the encounter can severely disrupt their proto-planetary systems, scattering the objects orbiting farthest from their stars and potentially even ejecting some objects altogether. These early years likely left scars on the edges of our solar system that persist even today, billions of years after the early tussles.

Recent research led by Amir Siraj, Princeton University, leverages these scars or their apparent absence to ask the question: given the structure we observe in the outer solar system today, what limits can we place on the number of stars born near the Sun and the amount of time the Sun spent in its birth cluster?

An illustration of the orbits for some of the distant sednoids considered in this study.
Credit: NAOJ

Distance is Power

Several authors have asked this question over the past several decades, but Siraj and collaborators added a new twist: instead of studying either the giant planets or the cold classical Kuiper Belt, they instead focused exclusively on the “distant sednoids.” This rarefied collection of only nine known objects includes only the most distant minor planets in our solar system: the sednoids never come within 40 au of the Sun, and they spend much of their orbits beyond 400 au. Interestingly, however, all of them orbit on planes that are fairly aligned with that of the planets, and none ever strays farther than 20° from the ecliptic.

Through a suite of numerical simulations, Siraj and collaborators demonstrate that this relatively tight distribution of inclinations implies that the Sun couldn’t have been too roughed up on its way out of the cluster. By simulating many different close flybys and their influence on the distant sednoids, the researchers constrained the product of the number of stars in the Sun’s birth cluster and the time the Sun spent there to be less than or equal to 5 billion years per cubic parsec. Assuming a typical cluster density of 100 stars per cubic parsec, this suggests that the Sun cleared out of the densest and most dangerous part of the cluster within just 50 million years.

The authors stress that this conclusion leans on the assumption that the distant sednoids arrived on their extreme orbits essentially immediately, though in fact astronomers aren’t sure exactly how and when these objects ended up on the outskirts of the solar system. If the sednoids were in fact implanted onto their orbits early on, this limit on how long it took the Sun to leave its siblings is by far the strongest to date. With the Vera C. Rubin Observatory poised to discover thousands of new distant solar system objects, it’s likely that the bound will grow even more stringent in the next few years.

By Ben Cassese

Citation

“Limits on Stellar Flybys in the Solar Birth Cluster,” Amir Siraj et al 2025 ApJL 993 L4. doi:10.3847/2041-8213/ae1025



Tuesday, July 15, 2025

Subaru Telescope Discovers "Fossil" of the Early Solar System

Figure 1: Artist’s illustration of the distant Solar System object nicknamed "Ammonite."
Credit: AI-generated illustration by Ying-Tung Chen (ASIAA))

Figure 2:The orbit of Ammonite (red line) and the orbits of the other three sednoids (white lines). Ammonite was discovered close to its perihelion, at a distance of 71 astronomical units (71 times the average distance between the Sun and Earth). The yellow point shows its position as of July 2025. Credit: NAOJ

Figure 3: This animation shows the motion of Ammonite over several hours. Based on its brightness at the time of observation, its diameter is estimated to be between 220 and 380 kilometers. Credit: NAOJ/ASIAA



The Subaru Telescope has revealed a fourth member of the sednoids, a group of small bodies with peculiar orbits around the outer edge of the Solar System that includes Sedna. The new object, officially designated 2023 KQ14, has been nicknamed "Ammonite" by the research team. Numerical simulations indicate that it has maintained a stable orbit since the early stages of the Solar System's formation. Ammonite is expected to serve as a "fossil" preserving memories of the Solar System's infancy. It may provide clues to the existence of the hypothetical Planet Nine and the origins of the Solar System.

Ammonite was discovered by the survey project "FOSSIL" (Formation of the Outer Solar System: An Icy Legacy), which uses the Subaru Telescope’s wide-field prime-focus camera, Hyper Suprime-Cam (HSC). FOSSIL was launched in 2020 by an international team led primarily by researchers from Japan and Taiwan to explore the icy worlds of the outer Solar System. FOSSIL aims to uncover the history of the Solar System from past to present by observing small bodies that retain traces of planetesimals formed when the Solar System was born. The name "FOSSIL" reflects the project's goal of uncovering the “fossils” of the Solar System.

"In recent years, spacecrafts have been sent to various small bodies in the Solar System for close observation and sample collection. However, these spacecrafts have only explored limited regions of the Solar System. Most of the vast Solar System remains unexplored. Wide-field observations with the Subaru Telescope are steadily pushing back the frontier," says Dr. Fumi Yoshida of the University of Occupational and Environmental Health and the Chiba Institute of Technology, who leads FOSSIL.

Ammonite was discovered by the survey project "FOSSIL" (Formation of the Outer Solar System: An Icy Legacy), which uses the Subaru Telescope’s wide-field prime-focus camera, Hyper Suprime-Cam (HSC). FOSSIL was launched in 2020 by an international team led primarily by researchers from Japan and Taiwan to explore the icy worlds of the outer Solar System. FOSSIL aims to uncover the history of the Solar System from past to present by observing small bodies that retain traces of planetesimals formed when the Solar System was born. The name "FOSSIL" reflects the project's goal of uncovering the “fossils” of the Solar System.

The FOSSIL team also conducted numerical simulations of Ammonite’s orbital evolution using computational resources including the PC Cluster operated by the National Astronomical Observatory of Japan. The results showed that Ammonite has maintained a stable orbit for at least 4.5 billion years. Although its current orbit differs from those of the other sednoids, the simulations indicate that their orbits were remarkably similar around 4.2 billion years ago.

The fact that Ammonite currently follows an orbit different from the other sednoids suggests that the outer Solar System is more diverse and complex than previously thought. It also imposes new constraints on the hypothetical Planet Nine. The numerical simulations conducted in this study suggest that if Planet Nine exists, its orbit should lie even farther out than previously predicted. Furthermore, the existence of Planet Nine would also need to explain why Ammonite’s orbit does not cluster with those of the other sednoids.

Dr. Yukun Huang of the National Astronomical Observatory of Japan who conducted simulations of Ammonite’s orbit comments, "The fact that Ammonite’s current orbit does not align with those of the other three sednoids lowers the likelihood of the Planet Nine hypothesis. It is possible that a planet once existed in the Solar System but was later ejected, causing the unusual orbits we see today."

Regarding the significance of this discovery, Dr. Fumi Yoshida states, "Ammonite was found in a region far away where Neptune's gravity has little influence. The presence of objects with elongated orbits and large perihelion distances in this area implies that something extraordinary occurred during the ancient era when Ammonite formed. Understanding the orbital evolution and physical properties of these unique, distant objects is crucial for comprehending the full history of the Solar System. At present, the Subaru Telescope is among the few telescopes on Earth capable of making such discoveries. I would be happy if the FOSSIL team could make many more discoveries like this one and help draw a complete picture of the history of the Solar System."

Video: This animation shows the orbit of a newly discovered sednoid, 2023 KQ14, in red, along with the orbits of the three previously known sednoids in white. The grid in the background is aligned with the ecliptic plane, with each square representing 100 astronomical units (au). Credit: NAOJ

These results appeared as Ying-Tung Chen et al. "Discovery and Dynamics of a Sedna-like Object with a Perihelion of 66 au" in Nature Astronomy on July 14, 2025.




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The Subaru Telescope is a large optical-infrared telescope operated by the National Astronomical Observatory of Japan, National Institutes of Natural Sciences with the support of the MEXT Project to Promote Large Scientific Frontiers. We are honored and grateful for the opportunity of observing the Universe from Maunakea, which has cultural, historical, and natural significance in Hawai`i.