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Universe Today

Reading the Galaxy's Past The Shape of a Black Hole Written in Rock Titan's Hidden Blanket Did Life Start When Impacts Created Vast Hydrothermal Systems in Earth's Crust? Meet REMORA: The Autonomous Space Fleet Built to Tag and Track Asteroids Watch the Moon Occult Venus in the Daytime for North America on June 17th Astrochemical Model Digs Into the Universe's Missing Sulfur Building in Space With Laser "Origami" On The Hunt For Cosmic Dawn And The Universe’s Very First Stars David Kipping Has a New Take on the Existence of Advanced Life in the Universe... and the Numbers are Not Encouraging! This is How Supermassive Black Holes Feed Themselves NASA’s Proposed EVE Mission Aims to Solve the Radius Valley Mystery Where Not to Look in the Search for ET Reading the Moon in X-rays Astronomers Find a Four-Carbon Sugar in Deep Space Why Can't the Universe Be Cyclic? Part 4: When a Good Idea Meets Bad Data Orbiting Stars Give Clues to a Quiescent Black Hole's Mass Magnetic Fields Help Binary Stars Form and Black Holes Merge A Rare Meteorite Just Revealed a Lost, Mars-Sized Planet from the Dawn of the Solar System Neptune’s Weirdest Moon Nereid Might Be the Lone Survivor of an Ancient "Moonpocalypse" Space Telescopes Are Now Overwhelmed by Satellite Trails Why Can't the Universe Be Cyclic? Part 3: The Ekpyrotic Universe and Its Bouncing Branes Catch Comet 220P McNaught in Outburst The Hidden Physics Complicating Interstellar Lightsails Student Astronomer Identifies Source of Mysterious Cosmic Signals Why Can't the Universe Be Cyclic? Part 2: The Awkward Triumph of Inflation The SETI Institute Releases Technosignature Report on 3I/ATLAS Why Can't the Universe Be Cyclic? Part 1: The Lure of the Eternal Universe A “Green” Dual-Mode Engine is About to Give CubeSats the Best of Both Worlds SETI Panel Revises Recommendations for Dealing With 'Disclosure Day' NASA Bids Farewell to MAVEN Mars Mission in Public Teleconference Astronomers Make "Live" Observation of a Nearby Protoplanetary Disk's Rotation The Cosmic Web Like You've Never Seen it Before They've Been Searching for the Milky Way's Black Hole Wind for 50 Years and Finally Found It What Happens to a Star That Captures A Primordial Black Hole? New Cloud-Detecting Method Will Help Astronomers Characterize Exoplanets Even Without A Magnetosphere, Mars Can Still Deflect Some Solar Wind The Unexpected Brightness 'Gap' in an Ancient Globular Cluster Cosmic Tryst: Venus Meets Jupiter at Dusk A Brief-ish History of SETI. Part IX: What Have We Found? A New Map of Stars Shows That the Small Magellanic Cloud is Expanding Here's Why So Many Massive Galaxies in the Early Universe Stop Forming Stars Exoplanetary Weather Watchers Find Strong Evidence of Magnetic Fields Asteroid Dirt is "Fluffier" Than We Thought Blue Origin Issues Official Statement on New Glenn Explosion Astronomers Uncover Statistical Evidence for Recoiling Supermassive Black Holes The Next-Generation Very Large Array Prototype (ngVLA) Gathers its First Light Flash-Melted Glass from Chang'e-5 Reveals a High Levels of Iron on the Moon How Early Earth's Unlikely Chemical Hero Appeared Mars Hid its Warm, Wet Crystals Underground Could the Milky Way’s Missing Mass Be Hiding in a Swarm of Interstellar Comets? Ceres’ Surface Is Much More Complex Than Previously Thought Are the JWST's Early Overrmassive Black Holes Just Normal-Range Outliers? Astrobiology's Looming Statistical Crisis The Filamentary Funnels That Form Stars How Heavy Can a Neutron Star Get? Jupiter Created the Birthplace of Rocky Bodies in the Early Solar System A Faster Way To Forecast Alien Weather Longest-period young transiting exoplanets discovered Roman Telescope's massive infrared mirror is ready to fly JWST Finds Methane Atmosphere on Temperate Exoplanet Blue Origin's Lunar Lander Just Passed Its Toughest Test Yet The Loudest Planet Wins A Brief-ish History of SETI. Part VIII: Paradox? What Paradox? The Galaxy That Forgot to Spin Did We Invent Dark Energy for Nothing? It Took a Cosmic Village to Shape Early Galaxies Lasers at the Lunar Poles Could Help Astronauts Navigate Who You Send to the Moon Matters More Than You Think MAVEN Spacecraft Finds New Plasma Squeezing at Mars The Sun is Changing and We Don’t Know Why ESA Selects Two New Scout-Class Missions 20,000 Eyes on the Universe The Flash Memory That Space Can't Destroy We Can Now Weigh Galaxies Using Dead Stars As Scales JWST Studies a Dark and Airless Super-Earth Earthly Hors d'oeuvres For Hungry Red Dwarfs The Name N159 Doesn't Do This Brilliant Star-Forming Region Justice An Orbiting Satellite Triad Reveals Motions Inside Earth Just Like Stars, Open Clusters Can Form Binary Pairs Astrophysical Calibration Could "Autotune" Gravitational Wave Detection Something Just Passed Between Us and a Distant Star. 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The Risk of Stellar Flybys and GJ 710 How Mars Can Help Us Understand 'Marginal' Exoplanets Ultrahigh-energy Cosmic Rays May Be Ultraheavy in Origin NASA's Next-Generation AI Processor Passes Early Testing
How a Giant Moon and a Steam Atmosphere Built the Recipe for Life
Andy Tomaswick · 2026-06-01 · via Universe Today

4.5 billion years ago was an interesting time for the Earth. The atmosphere was thick and what we would now think of as toxic. The Moon, which was freshly formed, looks much more massive than it does today and faintly glows with the residual heat from its own creation. And the floor was literally lava. Everywhere. If there were any children alive at the time, they would have no chance of winning that game. But for a long time, scientists had thought this molten phase of the Earth didn’t last long. But according to a new paper, available in preprint on arXiv by researchers at the Kapteyn Astronomical Institute, it might have lasted for upwards of half a billion years.

Why so long? Wouldn’t the magma that made up the Earth’s surface eventually cool down to a point where it became solid? In the long run yes, but that process can be drawn out by two competing factors - the tidal forces introduced by the newly formed Moon and the greenhouse effect of Earth’s own primordial atmosphere.

Today we know the Moon causes the ocean tides, but when it was newly formed (and much closer than it is now), it had an even more dramatic impact on the physical structure of the Earth. Since gravitational forces scale with distances, this close-by Moon kneaded the Earth’s interior like dough. This created “tidal heating” that generated massive internal heat, powering the magma oceans from within.

Fraser discusses how the Earth/Moon dynamic can create magma oceans.

On the other side, Earth can radiate that heat out into space, eventually allowing itself to cool and gain a solid surface. But not if its ability to radiate that heat away was blocked by an atmosphere. The magma itself outgassed just such an atmosphere, creating a massive greenhouse effect that dwarfs anything similar happening today.

To model this dynamic between the interior heating caused by the Moon and the greenhouse effect caused by the atmosphere, the authors used a planetary evolution framework called PROTEUS. Using this framework, they found that there were several periods of this phase of the Earth when the planet was in Global Radiative Equilibrium - in other words, it was releasing heat into space at almost the exact same rate as it was being heated by the tidal forces from the Moon. During these periods, the magma wouldn’t solidify - instead the Earth’s solidification would simply stall. And according to the paper, these stalling periods could last anywhere from 2 million to 320 million years.

That wide variability is caused by one particular aspect of the Earth’s chemistry - its oxygen fugacity - in other words, how oxidizing or reducing its mantle was. If it were oxidizing, it would have held on to water until the very late stages when the magma oceans began to crystallize. When it finally did degas as steam, it would have created a massive greenhouse blanket, causing the surface to stay molten for much longer than other scenarios.

Video describing the beginning of the Earth/Moon dynamic. Credit - Spark YouTube Channel

If, on the other hand, the mantle was reducing (i.e. dominated by hydrogen and methane), the planet would have degassed its greenhouse gases early, causing much less of a greenhouse effect. In this case, the only way the surface would have stayed molten for longer periods was if the lunar tides were much stronger than originally predicted.

Such a magma world isn’t just a nightmare for children playing The Floor is Lava - it also sounds pretty terrible for giving birth to life itself. However, according to the paper, such an extended magma ocean phase might have been exactly what life needed to get started later. The conditions during this long-term magma ocean phase, particularly for surface oxygen fugacities near the iron-wüstite buffer, resulted in an atmospheric methane to carbon dioxide ratio of around 0.1. That number might seem very specific, but it is the key to the photochemical production of hydrogen cyanide.

Nowadays, that chemical is deadly to most forms of life. But back when life first began, astrobiologists considered it a critical precursor molecule for the creation of RNA and proteins - in other words the literal building blocks of life. So Earth’s magma ocean phase, sustained by our much closer Moon, might have given Earth the time it needed to build up a surplus of prebiotic chemicals that would result in the spark of life later in the planet’s history.

We don’t know that for sure, but it is an intriguing hypothesis, and there is some logical chemistry to back it up. Whether that means Earth itself is an outlier in terms of its early conditions (big, close by moon, outgassing lava floor) remains to be seen. But the better we understand the conditions on the early Earth that eventually led to life, the more likely we are to recognize it when we finally find it somewhere else in the galaxy.

Learn More:

M.R. van Dijk, H. Nicholls, & T. Lichtenberg - Onset of habitable conditions on the Hadean Earth set by feedback between tides and greenhouse forcing

UT - A New Type of Exoplanet Has a Magma Ocean That's Lasted 5 Billion Years

UT - Deep Magma Oceans Could Help Make Super-Earths Habitable

UT - Early Earth's Oceans of Magma Accelerated the Moon's Departure