News
Mars-Like Worlds Near M-Dwarfs May Lose Air in Millions of Years
The criteria for finding an Earth-like planet unofficially comes down to two things: water and the habitable zone. But a phenomenon known as atmospheric escape often “escapes” the minds of many astronomy fans, and it turns out that atmospheric escape is one of the key characteristics for finding an Earth-like world. Although extensive research has been conducted on how the planet Mars might have lost its atmosphere, and potentially the ability to sustain life, how would the atmosphere enveloping a Mars-like exoplanet respond to stars different from our own?
Now, an international team of more than three dozen researchers might be one step closer to understanding atmospheric escape and how it not only influences planetary atmosphere evolution, but potentially the evolution of life. In a study recently submitted to The Astrophysical Journal, the collaborative team used computer models to simulate a Mars-like exoplanet (referred to as an exo-Mars in the paper) orbiting Barnard’s star, which is an M-type red dwarf star located approximately 6 light-years from Earth, about 14 percent the mass of our Sun, and is estimated to be between 7 to 10 billion years old.
For context, our Sun (which is a larger, G-type star) is approximately 4.6 billion years old. It is because of its age that Barnard’s star is so inactive compared to younger M-type stars, which exhibit larger solar flares and activity than our Sun. It is this inactivity compared to younger M-type stars that astronomers chose Barnard’s star to model their exo-Mars, the latter of which the team used the same planetary parameters as the planet Mars, including its same mass, radius, and thin carbon dioxide-heavy atmosphere.
However, the team placed their exo-Mars at a much closer orbital distance from Barnard’s star at 0.087 astronomical units (AU) compared to the actual Mars orbiting our Sun at 1.52 AU. The reason for this closer distance was to simulate the same level of solar activity and radiation as Mars receives from our Sun.
In the end, despite the less-active Barnard’s star, the researchers found that the atmosphere of exo-Mars would take approximately 350,000 years to remove a present-day Mars atmosphere enveloping exo-Mars and would take approximately 50 million years to remove an exo-Mars atmosphere equivalent to Earth’s atmosphere. While the team’s exo-Mars orbits just outside Barnard’s star’s habitable zone, they hypothesize that any planet orbiting within the habitable zone would likely have their atmosphere stripped like exo-Mars. Currently, Barnard’s star is estimated to have four small, rocky worlds orbiting inside the inner edge of the habitable zone, potentially putting the fates of their atmospheres even worse than the modeled exo-Mars.
The study notes, “Exo-Mars loses atmosphere very rapidly, and it is difficult to imagine that the four planets would lose atmosphere significantly more slowly than exo-Mars. Primary atmospheres seem similarly unlikely, since primary atmospheres are comprised of hydrogen and helium, which are lighter than CO2 [carbon dioxide] and thus should escape more easily, and were likely removed much earlier in the star’s evolution when the stellar XUV [X-ray/Extreme Ultraviolet] flux and wind rates were ∼ 100 times larger.”
Billions of years ago, Mars was hypothesized to have been a warmer and wetter planet, with vast rivers and large lakes of liquid water cascading across the Red Planet’s surface. While scientists estimate that these potentially habitable conditions existed for hundreds of millions of years, it is estimated that the Martian cooled significantly early in Mars’ history, resulting in a loss of volcanic activity and the magnetic field meant to shield the atmosphere and surface from the harsh solar radiation. Presently, Mars is a cold and dry world, devoid of liquid water or habitable conditions of any kind.
Studying how Mars-like worlds orbit and interact with other types of stars enables researchers to gain greater understanding into how life on exoplanets could form and evolve, and even how it might not come to pass. Additionally, studying how M-dwarf stars age and evolve is crucial for finding Earth-like exoplanets, as M-type stars are not only the most common type of star in the galaxy, but they also have lifetimes estimated to surpass our Sun by potentially trillions of years.
What new insight into Mars-like exoplanets and M-dwarf stars will researchers make in the coming years and decades? Only time will tell, and this is why we science!
As always, keep doing science & keep looking up!
News
Murder trial set for driver accused of killing 4 Pepperdine students

Driving at speeds of up to 104 mph, Fraser Michael Bohm whipped around a section of Pacific Coast Highway known as Dead Man’s Curve, skidded out of control and killed four Pepperdine University sorority sisters, prosecutors allege.
In September — nearly three years since the fatal accident — he will stand trial on murder charges.
Bohm, 24, is charged with four counts of murder and four counts of vehicular manslaughter with gross negligence stemming from the Oct. 17, 2023 crash in which he swerved onto the shoulder of the westbound PCH and slammed into three parked cars and the women, who were walking nearby.
Bohm’s defense team repeatedly has argued that there is inadequate evidence to sustain murder charges against him. They claim that his alleged speeding does not meet the legal standard for implied malice, meaning to act with a conscious disregard for human life. He was not under the influence of drugs or alcohol at the time of the crash, according to his attorneys.
“The data shows fatal collisions are rare” over a 10-year period on the section of PCH where the crash took place, defense attorney Alan Jackson told the court Monday, arguing that Bohm could not have expected that death could result from his alleged speeding.
A judge rejected this line of reasoning at a November hearing and did so again Monday, moving to set a Sept. 8 trial date and a Sept. 2 pretrial hearing.
Prosecutors with the L.A. County district attorney’s office have argued that Bohm knew there were potentially life-threatening consequences to accelerating over 100 mph in the 45-mph zone of PCH where the accident took place. Los Angeles Superior Court Judge Thomas Rubinson agreed, noting in November that Bohm told investigators he knew PCH “like the back of his hand” and that two of his best friends died in high-speed crashes.
On Monday, Bohm’s defense attorneys again tried to argue that Bohm was not aware his actions carried a high probability of death and also alleged that the prosecuting team unfairly withheld evidence relating to Bohm’s cellphone and vehicle speeds.
However, Rubinson ruled that the defense team was able to acquire sufficient evidence around traffic safety, collision history and enforcement activity along PCH without having to lobby prosecutors for the data. He said there were no evidentiary violations made by the district attorney’s office.
The victims of the crash were Alpha Phi sorority sisters Niamh Rolston, 20; Peyton Stewart, 21; Asha Weir, 21; and Deslyn Williams, 21, who all received their degrees posthumously.
The tragic accident sparked renewed calls for safety improvements along the 21-mile section of PCH in Malibu, one of the deadliest roads in the state, where 63 people have died since 2010. In July 2024, one person was killed and two injured in a head-on collision along the same stretch where the Pepperdine students died.
Traffic collisions dropped precipitously in the aftermath of the 2025 Palisades fire, when the road was closed for weeks and then reopened with strict speed limits. Nonetheless, as cars returned and speeding increased, accidents resumed. In February, a pedestrian became the latest Malibu fatality along an area of PCH near Point Dume.
Times staff writer Richard Winton and City News Service contributed to this report.
News
Why Restarting a Nuclear Power Plant Can Be Much Harder Than Expected
The first U.S. attempt at reopening a shuttered reactor has been held back by run-down equipment and a lack of planning.
News
Black Hole Collisions Tell a Tale of Repeating Mergers
A black hole merger is one of the Universe’s more energetic, massive, and weird events. During such a collision, two black holes orbit closer and closer until they collide and become a much more massive black hole. The event can emit neutrinos, photons from energized gases, and, as it happens, gravitational waves. Those waves help tell the story of the two objects involved in the collision.
Recent gravitational wave detections show hundreds of such mergers in the Universe. Many probably came from collisions of black holes created when massive stars died in supernova explosions. That’s the standard story we all learn about the deaths of supermassive stars—the creation of stellar black holes. But what happens to them afterwards? Those “smaller” black holes can merge again, creating a more massive black hole. And it could happen again, making larger and more massive objects in a process called “hierarchical merging.” It’s most likely happening in very crowded regions of galaxies.
A team of scientists including MIT’s Salvatore Vitale and Cailin Plunkett, Thomas Callister of Williams College in Massachusetts, and Michael Zevin of Chicago’s Adler Planetarium, is studying gravitational wave signals to see if this pathway is legitimate. According to Plunkett, the data show some intriguing results. “We’re finding that, for some of these merging black holes, it’s not their first rodeo,” said Plunkett. “Overall in the Universe, black holes are merging all the time. The question of how often they are repeatedly merging was pretty uncertain. Now we’re seeing a relatively consistent picture where there’s a decent percentage of black holes that are coming from this repeated pathway.”
How To Tell If It’s a First Merger or Not
The clues to the provenance of black holes in a merger lie in their spins. Think of the spin of a disk around a newly forming star. It has angular momentum. Some black holes have spin; others do not. A “first-time” black hole created in a supernova event creates a black hole with little to no spin. That’s because when the progenitor star dies, it loses much of its mass as well as its own spin. The resulting black hole shouldn’t have much spin, either.
According to Vitale, the scene changes when two black holes merge. It’s a more energetic event, and the collision should result in a second-generation black hole with a definite spin. “They would be spinning very fast, at about 70 percent their maximum possible spin,” Vitale said. That spin reveals the new black hole’s lineage, from two smaller ones. So, astronomers might start out looking for a duo of black holes about to collide. If one has a very high spin rate than its dance partner, then observers are looking at a pair where one black hole came from a collision of two smaller black holes.
Some merging black holes may be second-generation black holes that formed from the previous merging of two smaller black holes, according to a new study. Here’s an artist’s concept of the hierarchical formation of black holes. Credits: Credit: LIGO/Caltech/MIT/R. Hurt (IPAC)
Where Does This Happen?
Stellar-mass black holes can happen anywhere supermassive stars are dying in supernova explosions. But hierarchical mergers likely occur in very crowded environments. These are regions where stars are packed closely together—such as in clusters. “You might have a ton of stars whizzing around each other, and if some are massive and explode, they become black holes. The black holes continue to whizz around, and can capture each other and merge,” explained Plunkett. “This process can repeat potentially ad infinitum, by virtue of the fact that you have a ton of stars and black holes in this really dense environment.”
To find evidence of hierarchical mergers, the team looked at data in the LIGO-Virgo-KAGRA Gravitational Wave Transient Catalog (GWTC-4.0). This is a collection of data tracing gravitational wave detections made during the combined observatories’ fourth observing run. They looked for signals typical of hierarchical mergers of black holes. Specifically, the team wanted to catch the action just before the merger actually happens. It’s an interesting time. The black holes are spiraling in toward each other in a disk-like orbital plane. If their spins are perpendicular to the plane, the process of merger is fairly steady. But if the spins aren’t perpendicular, the disk takes on a distinct wobble. The wobble reveals information about the balance of the masses of the two black holes and their spins.
What the Collisions Reveal
Analysis of the data revealed numerous mergers that showed orbital wobbling that was likely caused by the collisions between first-generation and second-generation black holes. Extrapolate that out to mergers throughout the Universe, and it looks like about 14 percent of merging black holes have been down the same collision road at least twice. It turns out that black holes that have masses about 10 and 30 times that of the Sun were probably stellar-mass black holes created in supernova explosions. Interestingly, those of 20 and 40 solar masses (and above) were most likely to be second-generation black holes made from collisions of previous black holes.
How does that play out with the evolutionary story of the supermassive stars that form black holes? Plunkett points out that the violence of the supernova explosions may play a role. “One of the reasons why the 40-and-above regime is interesting is, stellar evolution theory predicts you shouldn’t be able to form black holes in that mass range at all from just a supernova,” Plunkett said. “We think supernovae from really massive stars end up being so violent that they leave no black holes at all above roughly 45 solar masses. Yet, we have seen black holes that are that massive. And the question is: Where did they come from?”
That’s a question that remains to be answered. In the meantime, this hierarchical merging of black holes over time may well explain some of the weirder black holes astronomers have discovered. Linking the black-hole mass spectrum to features in the spin distribution is a good way to identify the history of potential merger candidates as well as to understand the characteristics of existing black holes that exhibit strange spins. In the long run, studies of these characteristics will help astronomers tell the story of black hole evolution across the Universe.
For More Information
Many Black Holes Had Past Lives New Research Shows
Signatures of a Subpopulation of Hierarchical Mergers in the GWTC-4 Gravitational-Wave Dataset
Signatures of a Subpopulation of Hierarchical Mergers in the GWTC-4 Gravitational-Wave Dataset
-
Trending2 weeks agoUS marshal shot dead serving arrest warrant in Louisiana | US crime
-
Entertainment2 weeks agoZendaya wears angel wings at ‘The Odyssey’ NYC premiere
-
Entertainment2 weeks agoVrai makes the best lab-grown diamond earrings — just ask Taylor Swift
-
News2 weeks ago
Trump Pressures ICE to Resume Traffic Stops After They Were Halted Over Fatal Shootings
-
Trending2 weeks agoGracie Abrams: Daughter From Hell Album Review
-
News2 weeks agoAfter a Billion Kilometres, China’s Asteroid Hunter Finally Arrives
-
Trending3 weeks agoRussia’s Latest Gen Su-57 Stealth Jets Fail to Intercept Ukrainian Drones Over Omsk
-
Trending2 weeks agoMaps show millions of Americans under heat alerts from extreme temperatures in Plains, Northeast
