Not lander. There have been projects going on around the world for almost 2 decades and they are all about "planetery penetrator".We will need an Enceladus probe and lander/submersable to prove that subsurface ocean theory correct Brett Davidson, though I cannot see one getting ready for launch until the 2030s at least sadly.
Yeah. As Kyplanet said, you aren't expected to memorise all of the elements (though Tom Lehrer did for a time).Honestly I'm cool with 36 planets.
In the search for life in the cosmos, biopigments on exoplanet surfaces are a critical target.
Such pigments have been detected in Earth’s spectrum (by the Galileo spacecraft and in Earthshine) via the “vegetation” or “photosynthesis red edge” (VRE or PRE), a sharp, step-like increase in reflectance with increasing wavelength at ~700 nm. Future space telescopes like the Habitable Worlds Observatory (HWO) are designed to obtain disk-integrated spectra of Earth-like exoplanets in the visible-to-near-infrared to identify such features.
However, there has been no systematic analysis of the occurrence of similar reflectance edges among minerals of non-biological origin. Here, we use existing databases of mineral reflectance spectra to explore the risk that minerals may present false positives in the search for biopigments on exoplanets. We find that several sulfide and tectosilicate minerals, as well as the prebiotically important cyanide salt, potassium ferrocyanide, have PRE-like features.
We characterize these features in order to assess how they may be distinguished from biopigments. We conclude that the future evaluation of the biogenicity of PRE-like features in exoplanet reflectance spectra can be informed by the atmospheric context, but may require an assessment of the prior probability of non-biological and biological hypotheses about the surface materials of exoplanets.
Cosmologists have long struggled to determine whether the universe's accelerating expansion is being driven by a simple cosmological constant, or whether dark energy's influence is evolving over time. In a new analysis published in Physical Review D, Samsuzzaman Afroz and Suvodip Mukherjee at the Tata Institute of Fundamental Research, Mumbai, have identified a subtle impact on the inference of the nature of dark energy, due to a tiny mismatch between a fundamental cosmological distance relation and two key datasets used to measure the properties of dark energy.
Neptune's moon Nereid might be the only satellite surviving from the planet's original system, researchers report in a new study.
For a while back there we might be able to avoid the black hole. They’d been lurking as shadows in our theories of gravity forever. Enough mass crammed into a small enough space would lead to a gravitational field at the surface from which not even light could escape from a surrounding surface that we call the event horizon. The event horizon generates paradoxes that worry physicists, and the singularity of infinite density within the black hole worries them even more. And so many brave physicists have fought for centuries to prove that these monsters don’t exist. They hoped nature would step in to save us from the theoretical horror of ultimate gravitational collapse. One of our final hopes is the Planck star—a ball of energy at the heart of the black hole like frozen shards of the Big Bang. Let’s hope they’re real, for physics’ sake.
A comet from beyond our solar system is giving astronomers a rare look at how alien planetary systems may form under conditions very different from those that shaped our own cosmic neighborhood.
The object, called 3I/ATLAS, was discovered less than a year ago as it traveled through our solar system. Although scientists still do not know exactly where it originated, new research led by the University of Michigan suggests the comet formed in an extremely cold region of space.
The study, published in Nature Astronomy, found that 3I/ATLAS contains unusually high levels of deuterium-rich water, often called “heavy water.” The project received support in part from NASA, the U.S. National Science Foundation, and Chile’s National Research and Development Agency.
“Our new observations show that the conditions that led to the formation of our solar system are much different from how planetary systems evolved in different parts of our galaxy,” said Luis Salazar Manzano, lead author of the study and a doctoral student in the U-M Department of Astronomy.
Heavy Water Found in Interstellar Comet
Water is made up of two hydrogen atoms and one oxygen atom, giving it the chemical formula H2O. In normal water, hydrogen atoms contain only a proton. But deuterium is a heavier version of hydrogen that contains both a proton and a neutron.
Researchers discovered that a surprisingly large portion of the comet’s water contains deuterium. Heavy water can also be found on Earth and in comets from our solar system, but the amount detected in 3I/ATLAS was far greater.
“The amount of deuterium with respect to ordinary hydrogen in water is higher than anything we’ve seen before in other planetary systems and planetary comets,” Salazar Manzano said.
According to the researchers, the ratio of deuterium in the comet’s water was about 30 times higher than the levels measured in any comet from our solar system. It was also roughly 40 times greater than the ratio found in Earth’s oceans.
The possibility of detecting artificial signals transmitted by alien civilizations via collimated X-ray or gamma-ray beams is investigated. The prospect of using such beams for human communication within the solar system and beyond is also discussed. Detector responses were simulated for input signals and analyzed using relative entropy. For simplicity, all signals were assumed to use on-off keying (OOK) modulation. “Real” signals were generated by taking digital files and sequentially feeding their raw binary data to the detector simulator, the resulting normalized information content of the detector signals was plotted and compared to random noise signals. Since jpeg files contain compressed information, these served as a proxy for artificial alien signals. This showed that there is a clear difference in measured information content between natural and artificial signals, even with relatively poor time resolution in the detector causing the signals to be smeared (dead-time/rise-time intervals many times longer than the duration between signal pulses). It was found that so long as the signal lasts for at least several rise-time/dead-time intervals, the distinction between random and artificial signals is obvious.
some scientists believe that these searches suffer from an "anthropocentric bias" — meaning we're trying to understand nonhuman entities through a distinctly human lens — and do not account for potential civilizations that are wholly different from our own. Due to this bias, we may be overlooking promising signs of life.
To get high yields from reluctant bacteria, they used a new method they call "growth-coupled biosynthesis," which incentivized bacteria to make lots of xanthommatin by connecting their survival to pigment production
Discovery by Johns Hopkins researchers of daily cloud cycle on a Hot Jupiter planet provides unique window into its make-up and evolution
This NASA Hubble Space Telescope image reveals an enigmatic galaxy with a bright center and a face that hints at spiral structure, yet it holds no obvious spiral arms. Reddish-brown clumps and filaments of dust partially obscure the galaxy’s full face, while red, blue, and orange light from distant galaxies shines through its diffuse outer regions and dots the inky-black background.
Looking back at 14 years of Hubble telescope data for Jupiter’s moon Europa has given Southwest Research Institute (SwRI) scientists a better understanding of its tenuous atmosphere. The findings have cast doubt on previous evidence suggesting that the icy moon intermittently discharges faint water plumes from a presumed subsurface ocean.
“The evidence for water vapor plumes on Europa isn’t as strong as we first understood it,” said SwRI’s Dr. Kurt Retherford, one of the authors of a 2014 paper initially making that assertion. Retherford and his colleagues have recently published a new paper reanalyzing the data.
Like matter or gravity, your consciousness may be a fundamental part of reality.
But what if consciousness is actually a fundamental building block of the universe itself, similar to gravity or mass, rather than something the brain creates?
So, if consciousness is indeed a fundamental part of the universe, what does this mean for us as people? For starters, it could answer a host of questions we’ve otherwise viewed as impossible, according to Reggente.
He believes that the “hard problem of consciousness”—or how subjective experience could arise from physical matter—is the obvious case.
“If consciousness is fundamental, the question dissolves: You no more need to explain how the mind emerges from matter than a physicist needs to explain how spacetime emerges from something more basic,” Reggente says. “With this view, the ‘hard problem’ is not a problem at all.”
The same logic applies to cosmological puzzles—or other all-encompassing questions that seem impossible to answer—like, “What came before the Big Bang?” or “What is the universe expanding into?” according to Reggente.
Hello and welcome! My name is Anton and in this video, we will talk about exogeology
Links:
https://arxiv.org/pdf/2605.00100https://www.youtube.com/redirect?event=video_description&redir_token=QUFFLUhqbVFOMlJLSS1CQTdVcGVHQUk4cDNzRVlfb3o5d3xBQ3Jtc0trYWVQUG1kRzhpRlZrcUxiMlZYaG5TT0ZORVRER2xKYlc0N3l2cF9WdzRQYmc1cGloR1ZldHBHY2V3VHZsTEhHVjJ3dC1WbVBqZk5sd1BnR0JGSnZzRS1jalRFVWs5N0U4X2J0dFpCb1hVdkpBNnU4TQ&q=https://arxiv.org/pdf/2605.00100&v=rCROdUGwVJ8
https://hycean.group.cam.ac.uk/wp-con...https://www.youtube.com/redirect?event=video_description&redir_token=QUFFLUhqbVNYNkNOdjlwYXRNTEpmQ2RLd3RweWM5M1JHUXxBQ3Jtc0tuUnJwSnJnOWhqdE5oMFNBLVRfUWZ1RUV4N3NWakU4S3BkUkxRelJGRVJURElvZW1CQlpEOTdKeUpMNVE0UjRNRFlobGhHclF5TkJfYzA0NGNPa3hwZ09ubTBiWjFsRzFzVlFXd0dKU0JPTjRzbXdYSQ&q=https://hycean.group.cam.ac.uk/wp-content/uploads/2025/04/Transmission_spectroscopy-new.png&v=rCROdUGwVJ8
#exogeology #science #astronomy
0:00 First ever case of exogeology
0:40 What star and planet is this?
2:50 How these observations are done
4:10 Studying the surface and not just the atmosphere
5:40 Results and planetary surface analysis
8:57 Conclusions and implications
Astronomers examining data from the James Webb Space Telescope (JWST) say they’ve spotted a contender for the most distant galaxy ever seen, Capotauro.
The galaxy looks like nothing more than a tiny smudge. Yet its light appears to have set out when the universe was only about 90 million years old.
multiple worlds in close packed systems would be interacting such that their rotation would at times be chaotic, possibly meaning that they will be rotating within the parent star's field after all for some periods. Might that mean fields that wax and wane according to rotation states?
Bizarre Venus surface formations (or coronae) are likely key to understanding our twin planet's heretofore inscrutable interior. Using NASA Magellan spacecraft data from decades past, Anna Gulcher, an earth and planetary scientist at Germany's University of Freiburg, have created innovative new 3D models of the largest coronae to better understand Venus' puzzling geodynamics.
The source of the significant water ice deposits hidden in Mercury's polar regions has been a topic of debate among researchers. A new study, published in the Journal of Geophysical Research: Planets, suggests that these deposits were accumulated in only one Mercurian day (176 Earth days) by a large impactor, such as a comet or asteroid. While previous studies have suggested a similar scenario, this is the first study to fully model the impact. Furthermore, these new models suggest that the impactor may have been larger and slower than previously suggested.
The James Webb Space Telescope (JWST) has revealed a dark, scorched world that may be similar to the Moon or Mercury but about 30 percent larger than Earth.