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Asteroids, Comets and Meteors

A Mysterious Mineral in Asteroid Ryugu Challenges Our Understanding of Planetary History

A surprising discovery from a tiny grain of asteroid Ryugu has rocked scientists’ understanding of how our Solar System evolved. Researchers found djerfisherite—a mineral typically born in scorching, chemically reduced conditions and never before seen in Ryugu-like meteorites—inside a sample returned by Japan’s Hayabusa2 mission. Its presence suggests either Ryugu once experienced unexpectedly high temperatures or that exotic materials from other parts of the solar system somehow made their way into its formation. Like discovering a palm tree fossil in Arctic ice, this rare find challenges everything we thought we knew about primitive asteroids and the early mixing of planetary ingredients.

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As scientists continue to explore the vast expanse of our solar system, they are constantly reminded that there is still much we don’t know about its origins and evolution. A recent discovery in the asteroid Ryugu has shed new light on this phenomenon, leaving researchers with more questions than answers.

The Hayabusa2 mission returned pristine samples from the C-type asteroid Ryugu on December 6, 2020. These samples were crucial for improving our understanding of primitive asteroids and their role in forming the Solar System. However, a research team at Hiroshima University made an unexpected find – the presence of djerfisherite, a potassium-containing iron-nickel sulfide mineral, in one of these Ryugu grains.

Djerfisherite is typically associated with enstatite chondrites, which form under very reduced conditions. Its occurrence in CI chondrites, like those found in Ryugu, has sparked debate among scientists about the asteroid’s history and formation processes. Associate Professor Masaaki Miyahara explained that djerfisherite’s presence suggests either an unexpected local environment or long-distance transport in the early solar system.

The research team had been conducting experiments to understand the effects of terrestrial weathering on Ryugu grains. While observing these grains using field-emission transmission electron microscopy (FE-TEM), they stumbled upon djerfisherite in grain number 15, sample plate C0105-042. This finding opens new avenues for understanding the complexity of primitive asteroids and challenges our previous notion that Ryugu is compositionally uniform.

Ryugu’s parent body is believed to have formed between 1.8 to 2.9 million years after the beginning of the Solar System. During this time, it existed in the outer region of the solar system, where water and carbon dioxide were present as ice. The temperature inside the parent body remained below approximately 50℃. However, the presence of djerfisherite in Ryugu suggests that materials from different formation histories may have mixed early in the solar system’s evolution.

Two hypotheses have been proposed to explain this phenomenon: either djerfisherite arrived from another source during the formation of Ryugu’s parent body or it was formed intrinsically when the temperature of Ryugu was raised to above 350 ℃. Preliminary evidence indicates that the intrinsic formation hypothesis is more likely to be true.

Ultimately, scientists aim to reconstruct the early mixing processes and thermal histories that shaped small bodies like Ryugu. By understanding these events, we can gain a better grasp of planetary formation and material transport in the early solar system. The discovery of djerfisherite in asteroid Ryugu has taken us one step closer to unraveling this enigma.

Asteroids, Comets and Meteors

The Elusive Planet Next Door Continues to Baffle Astronomers

NASA’s James Webb Space Telescope has detected strong evidence for a giant planet orbiting Alpha Centauri A, the nearest Sun-like star to Earth. Located just 4 light-years away, this possible Saturn-mass world may travel between one and two times the distance from its star that Earth does from the Sun. The planet appears to lie in the habitable zone, though its gas giant nature makes it unlikely to host life.

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The search for exoplanets has been a thrilling adventure in recent years, with scientists using various methods to detect worlds beyond our solar system. One such method involves observing the light emitted by stars, which can be affected by the presence of planets. In the case of the Alpha Centauri star system, located just 4 light-years away from Earth, astronomers have been trying to confirm the existence of a giant planet orbiting one of its three stars.

Using the Mid-Infrared Instrument (MIRI) on NASA’s James Webb Space Telescope, researchers have found strong evidence of a possible gas giant planet orbiting Alpha Centauri A. The observations were made in August 2024 and February 2025, using the coronagraphic mask aboard MIRI to block the light from Alpha Centauri A. While the initial detection was exciting, additional observations in April 2025 did not reveal any objects like the one identified in August 2024.

To investigate this mystery, researchers used computer models to simulate millions of potential orbits, incorporating the knowledge gained when they saw the planet and when they did not. These simulations suggested that the planet could be a gas giant approximately the mass of Saturn, orbiting Alpha Centauri A in an elliptical path varying between one to two times the distance between the Sun and Earth.

While the existence of this planet is still uncertain, it would mark a new milestone for exoplanet imaging efforts if confirmed. The potential planet seen in the Webb image of Alpha Centauri A would be the closest to its star seen so far, and its very existence in a system of two closely separated stars would challenge our understanding of how planets form, survive, and evolve in chaotic environments.

The James Webb Space Telescope is the world’s premier space science observatory, and its MIRI instrument was developed through a 50-50 partnership between NASA and ESA. The telescope is solving mysteries in our solar system, looking beyond to distant worlds around other stars, and probing the mysterious structures and origins of our universe and our place in it.

If confirmed by additional observations, the team’s results could transform the future of exoplanet science. This would become a touchstone object for exoplanet science, with multiple opportunities for detailed characterization by Webb and other observatories. NASA’s Nancy Grace Roman Space Telescope, set to launch by May 2027, is equipped with dedicated hardware that will test new technologies to observe binary systems like Alpha Centauri in search of other worlds.

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Asteroids, Comets and Meteors

“Explosive Consequences: Baby Star’s Jet Causes Shockwave That Threatens Its Own Existence”

Astronomers have stumbled upon an incredible cosmic chain reaction: a young star launched a high-speed jet that ignited an explosion, creating a massive bubble in space that is now slamming back into the very star system that birthed it. This startling feedback loop, caught for the first time using ALMA data, may reshape what we know about how stars and planets form, and the volatile environments they endure. Nature, it seems, still holds dramatic surprises.

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Astronomers have made a groundbreaking discovery in space, revealing that a young star’s own explosion can push back against it and influence its formation. This finding has significant implications for our understanding of how stars and their planets come into being.

Stars are formed from the collapse of molecular clouds in space. As these clouds collapse, they retain their angular momentum, causing them to spin and evolve into protoplanetary disks. Within these disks, stars and planets form, but not all material is incorporated into new stars and planets. Some excess matter is ejected through powerful jets aligned with the rotation axis of the disk.

A team of Japanese astronomers was re-examining archival data from the Atacama Large Millimeter/submillimeter Array (ALMA) when they stumbled upon an explosively expanding bubble structure near a protoplanetary disk called WSB 52. Located 441.3 light-years away in the direction of the constellation Ophiuchus, further analysis revealed that a shock front created by the expanding bubble was colliding with and distorting the disk.

This phenomenon, known as a “shock-induced disk distortion,” has not been predicted theoretically and is unprecedented among young stars. The research team found that the center of the bubble aligned with the disk’s rotation axis, indicating that a jet emitted from WSB 52 hundreds of years ago collided with cold gas near the disk, causing it to compress and explode.

According to lead researcher Masataka Aizawa at Ibaraki University, “This discovery shows us that nature is far more complex than humans think. The effects of these explosions on star formation and planetary system creation are still unknown and require further research.”

The implications of this finding are profound, suggesting that young stars and their planets may be exposed to a harsher environment than previously thought. As scientists continue to explore the mysteries of the universe, this discovery serves as a reminder that there is still much to learn about the intricate processes governing the birth and evolution of celestial bodies.

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Asteroids, Comets and Meteors

Scientists Uncover Mysterious Molecule with Potential to Spark Life in Space

Scientists have successfully synthesized methanetetrol, an incredibly unstable and previously elusive compound thought to be a key ingredient in the chemical evolution of life. Described as a “prebiotic concentrate” or even a “prebiotic bomb,” this molecule could represent a crucial step in the cosmic recipe for life.

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The discovery of the elusive compound, methanetetrol, has sent shockwaves through the scientific community. An international team of researchers, led by Ryan Fortenberry, Ralf Kaiser, and Alexander M. Mebel, have successfully synthesized this prebiotic concentrate for the first time.

“This is essentially a seed of life molecule,” Fortenberry explained in an interview. “It’s something that can lead to more complex chemistry if given the opportunity.” The team used a unique process involving frozen water and carbon dioxide ices exposed to cosmic ray-like radiation to release methanetetrol into gas form.

Methanetetrol is an ortho acid, an elusive class of compounds thought to play a key role in early life chemistry. However, its instability means it’s likely to break down quickly, releasing water, hydrogen peroxide, and other potential compounds essential for life.

“It’s like a prebiotic bomb,” Fortenberry said, highlighting the molecule’s explosive potential when exposed to energy. If methanetetrol can form in the lab, it can also form naturally in space, making it a crucial discovery for astrochemists searching for regions with life-supporting chemistry.

While carbon is the foundation of life, oxygen is what makes up nearly everything else. “Oxygen is everywhere and is essential for life as we know it,” Fortenberry emphasized. By finding places where methanetetrol forms naturally, scientists can identify potential building blocks to support life beyond Earth.

This groundbreaking research has been made possible by funding from the National Science Foundation (NSF), highlighting the importance of continued investment in scientific inquiry and discovery.

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