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| Mars and Deimos viewed by Hera's Hyperscout H. The red planet appears light blue in this near-infrared Hyperscout H image from ESA’s Hera spacecraft. Image Credit: © ESA |
Scientific Frontline: Extended "At a Glance" Summary: The Surface Evolution of Deimos
The Core Concept: A recent study demonstrates that a single, sub-catastrophic asteroid impact formed the distinctive south pole depression and smooth, dusty regolith layer on Mars's moon Deimos.
Key Distinction/Mechanism: Unlike its heavily cratered sister moon, Phobos, Deimos features a smooth surface created when a 320-meter asteroid struck at a 45-degree angle. The highly porous, rubble-pile internal structure of Deimos dampened the impact, allowing material to be globally redistributed without shattering the moon.
Major Frameworks/Components:
- Bern Smoothed Particle Hydrodynamics (SPH) Code: A specialized computational framework utilized to simulate celestial collisions by modeling the complex interaction of gravity, density, and material strength.
- Rubble-Pile Asteroid Model: The structural hypothesis that Deimos possesses an exceptionally weak and porous internal composition, preventing catastrophic fragmentation during high-velocity impacts.
- Regolith Redistribution: The physical mechanism by which ejected collision material settles across the celestial body, creating a smooth debris layer up to 200 meters deep over existing surface features.
Branch of Science: Planetary Science, Astrophysics, and Impact Physics.
Future Application: These impact models provide critical predictions regarding regolith thickness, distribution, and mechanical properties for the Japan Aerospace Exploration Agency's (JAXA) upcoming Martian Moons eXploration (MMX) sample-return mission.
Why It Matters: This research resolves the long-standing scientific anomaly of Deimos's unique topography, provides essential baseline data for future space missions, and enhances theoretical models of celestial collision mechanics.
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| Simulation of the asteroid impact on Deimos. Image Credit: © Sabina Raducan |
An international research team led by the University of Bern has used high-resolution computer simulations and comparisons with the latest images from the ESA space probe Hera to show that a single asteroid impact shaped the Martian moon Deimos and created its smooth, dusty surface. This is the first scientific publication to use data from the ESA space probe Hera flyby of Deimos, and it provides an important foundation for future space missions, such as the MMX mission of the Japan Aerospace Exploration Agency (JAXA).
Deimos, the smaller and outermost of Mars’s two moons, is roughly oval in shape and has a deep depression at its south pole. Unlike its heavily scarred sister moon, Phobos, Deimos is covered by a loose layer of dust and rubble—a so-called regolith layer—which gives it a smoother, dustier appearance. Although numerous space probes have provided increasingly detailed images of its surface over the past decades, the origin of the debris layer and the depression at the south pole remains unclear.
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| Dr. Sabina Raducan, Vrije Universiteit Brussel (VUB) and International Space Science Institute (ISSI) Photo Credit: © Courtesy of Sabina Raducan |
A new study by an international research team, led by Dr. Sabina Raducan in collaboration with the Observatoire de la Côte d’Azur, the University of Arizona, the University of Tokyo, and others, addresses this question. Raducan was a researcher in the Division of Space Research and Planetary Sciences (WP) at the Physics Institute at the University of Bern until October 2025 and is now a science program manager at the International Space Science Institute and a senior fellow at the Vrije Universiteit Brussel. Using high-resolution computer simulations from the "Bern Smoothed Particle Hydrodynamics (SPH)" code, the researchers were able to show that the distinctive depression near Deimos’s south pole was most likely formed by a single, nondestructive asteroid impact. This impact is also believed to have created the regolith layer present on Deimos. The study is the first scientific publication to use data from the flyby of Deimos by the ESA space probe Hera, which is currently en route to the distant asteroid moon Dimorphos. The study was published in Nature Astronomy.
Bern Code Simulates Impact
To investigate how the depression and the surface structure of Deimos formed, the researchers used the Bern SPH code, developed at the University of Bern over the course of two decades. It is designed to simulate collisions between asteroids, comets, or planets. Using the Bern computer code, colliding bodies are broken down into millions of particles, whose behavior during impact is controlled by the interaction of various reconfigurable variables, such as gravity, density, and material strength. The University of Bern is a global leader in the numerical modeling of impacts, and the method was also used to simulate the collision of NASA’s DART spacecraft with the asteroid Dimorphos.
"The code runs on a high-performance computing cluster here at the University of Bern and is one of the few codes capable of performing this type of simulation," explains study leader Sabina Raducan, who is also a cochair of the Hera Impact Physics Working Group for the ESA’s Hera mission. In numerous simulations, they varied the size, velocity, and impact angle of the potential impactor, as well as the internal structure of Deimos. "We carried out about one hundred simulations—each one took about a week." The researchers then compared these simulations with observational data from the ESA's space probe. Hera will study in detail the consequences of the NASA DART probe’s impact on Dimorphos—and thus evaluate the deflection of asteroids as a potential method to defend Earth against asteroid impacts. In March 2025, the Hera mission used a flyby of Mars for a gravity-assist maneuver to set a course for its actual target, Dimorphos. This presented a unique opportunity: Hera observed Deimos at close range.
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| PD Dr. Martin Jutzi, Physics Institute, Space Research and Planetary Sciences (WP), University of Bern Photo Credit: © Courtesy of Martin Jutzi |
A Single Impact Caused Deimos’s Depression and Surface Structure
The study’s results clearly point to one scenario: an asteroid striking at a 45-degree angle with a diameter of about 320 meters caused the observed south pole depression in terms of its extent and shape. At the same time, this scenario explains the thin layer of regolith observed across the entire moon. During the collision, large amounts of material were hurled across the surface, covering many of the existing surface features—in some places to a depth of more than 200 meters. "Our simulation thus shows that a single impact was sufficient to decisively shape the current landscape of Deimos," explains coauthor Martin Jutzi from the Division of Space Research and Planetary Sciences (WP) at the University of Bern, who also serves as a cochair of the Hera Impact Physics Working Group. "The impact was violent enough to redistribute material globally, but not so strong that it would have shattered the moon." The comparison between the model and observations also shows that the uppermost layers of Deimos are exceptionally weak and that its internal structure is highly porous. This resulted in the impact forces being dampened. "In terms of its physical properties, Deimos more closely resembles the so-called rubble-pile asteroids than Earth’s Moon," says Raducan. "But that doesn’t necessarily mean that Deimos is actually an asteroid. It could also have formed from material ejected during impacts on Mars."
Important Predictions for the Japanese Space Mission
While alternative explanations for Deimos’s smooth surface and southern basin remain possible, this study offers a unified explanation for both features and provides practical predictions that can be tested by future space missions. For example, the Japan Aerospace Exploration Agency (JAXA) is currently preparing the Martian Moons eXploration (MMX) mission, which is scheduled to launch in 2026. The mission’s goal is to observe the two Martian moons in detail and bring samples from Phobos back to Earth. "Our study provides important, concrete predictions for this Japanese MMX mission, such as the thickness and distribution of the regolith layer and the mechanical properties of Deimos’s material," explains Raducan. "This gives MMX a clearer picture of what its instruments—and ultimately the sample collection—can expect."
Published in journal: Nature Astronomy
Title: Deimos’s shape and geology explained by a subcatastrophic impact
Authors: S. D. Raducan, H. F. Agrusa, E. Asphaug, C. M. Ernst, M. Jutzi, P. Michel, M. Popescu, and S. Sugita
Source/Credit: University of Bern
Edited by: Scientific Frontline
Reference Number: ps081826_01
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