Space & Physics
Could Alien Life Thrive in Liquid That’s Not Water? MIT Scientists Propose a Dramatic New Possibility
A special blend of chemicals—known as ionic liquids—can easily form on rocky planets and moons, potentially creating new havens for life in the cosmos
For centuries, the search for life beyond Earth has been soaked in one belief: water is essential. Now, MIT researchers are challenging this planetary doctrine—suggesting that the ingredients for life could thrive in liquids far different from water, and perhaps on worlds much harsher than our own.
In a study published this week in Proceedings of the National Academy of Sciences, the MIT-led team demonstrated that a special blend of chemicals—known as ionic liquids—can easily form on rocky planets and moons, potentially creating new havens for life in the cosmos.
Ionic liquids are a type of salt that stays liquid at temperatures below 100°C and, unlike water, can endure extremes of heat and pressure. In their experiments, the researchers mixed sulfuric acid (often produced by volcanoes) with simple nitrogen-rich organic compounds (found on asteroids and planetary atmospheres). The result: a persistent, stable liquid that doesn’t evaporate even when most of the acid is gone.
Ionic liquids, it turns out, can be friendly to rare biomolecules—like hardy proteins—that can resist breakdown in harsh conditions.
Expanding the habitability zone
“We consider water to be required for life because that is what’s needed for Earth life. But if we look at a more general definition, we see that what we need is a liquid in which metabolism for life can take place,” said Dr. Rachana Agrawal, who led the study at MIT’s Department of Earth, Atmospheric and Planetary Sciences. “Now if we include ionic liquid as a possibility, this can dramatically increase the habitability zone for all rocky worlds.”
The implications are staggering: even on planets that are too hot, or whose atmospheres are too thin for water to exist, stable ionic liquids could form and persist—potentially nurturing forms of alien life, though they may look nothing like Earth’s water-based organisms.
From Venus to beyond
The inspiration came when the team was working to solve a Venus mystery. Venus, shrouded in clouds of sulfuric acid, has long fascinated scientists seeking signs of life. When Dr. Agrawal and her colleagues tried to evaporate sulfuric acid from a solution to isolate organic molecules, a stubborn liquid layer wouldn’t go away. They realized they’d accidentally created an ionic liquid—a discovery that opened new doors in astrobiology.
Dr. Sara Seager, MIT’s Class of 1941 Professor of Planetary Sciences and co-leader of the study, described the breakthrough: “In high school, you learn that an acid wants to donate a proton. Oddly enough, we knew from our past work that sulfuric acid (the main component of Venus’ clouds) and nitrogen-containing compounds have this unique chemistry—one gives up a hydrogen, one takes it. It’s like one person’s trash is another person’s treasure.”
After testing over 30 nitrogen compounds with sulfuric acid, the scientists confirmed that ionic liquids reliably form under a wide range of conditions—even on basalt rocks similar to those on planetary surfaces.
“We were just astonished that the ionic liquid forms under so many different conditions,” Seager said. “If you put the sulfuric acid and the organic on a rock, the excess acid seeps into the pores, but you’re still left with a drop of ionic liquid. Whatever we tried, ionic liquid still formed.”
Their experiments showed that this process happens up to 180°C and at pressures far below Earth’s, broadening the realm of possible habitable worlds.
New oases in the universe
Imagine a rocky world, hotter than Earth, where volcanic sulfuric acid flows over pockets of organic matter—ingredients for life scattered across the solar system. According to Dr. Seager, these spots could become long-lived pools of ionic liquid, tiny oases for simple, exotic life forms.
“We’re envisioning a planet warmer than Earth, that doesn’t have water, and at some point in its past or currently, it has to have had sulfuric acid, formed from volcanic outgassing,” Seager explained. “This sulfuric acid has to flow over a little pocket of organics. And organic deposits are extremely common in the solar system.”
Just how far could this discovery go? The team says much more work lies ahead. They will now focus on what kinds of molecules—and what forms of life—could actually flourish in these unearthly environments.
“We just opened up a Pandora’s box of new research,” Seager said. “It’s been a real journey.”
Contributors to the study include: MIT scientists Sara Seager, Rachana Agrawal, Iaroslav Iakubivskyi, Weston Buchanan, Ana Glidden, Jingcheng Huang; Maxwell Seager (Worcester Polytechnic Institute); William Bains (Cardiff University); Janusz Petkowski (Wroclaw University of Science and Technology).
Space & Physics
MIT Pioneers Real-Time Observation of Unconventional Superconductivity in Magic-Angle Graphene
Physicists have directly observed unconventional superconductivity in magic-angle twisted tri-layer graphene using a new experimental platform, revealing a unique pairing mechanism
MIT physicists have unveiled compelling direct evidence for unconventional superconductivity in “magic-angle” twisted tri-layer graphene—an atomically engineered material that could reimagine the future of energy transport and quantum technologies. Their new experiment marks a pivotal step forward, offering a fresh perspective on how electrons synchronize in precisely stacked two-dimensional materials, potentially laying the groundwork for next-generation superconductors that function well above current temperature limits.
Instead of looking merely at theoretical possibilities, the MIT team built a novel platform that lets researchers visualize the superconducting gap “as it emerges in real-time within 2D materials,” said co-lead author Shuwen Sun in a media statement. This gap is crucial, reflecting how robust the material’s superconducting state is during temperature changes—a key indicator for practical applications.
What’s striking, said Jeong Min Park, study co-lead author, is that the superconducting gap in magic-angle graphene differs starkly from the smooth, uniform profile seen in conventional superconductors. “We observed a V-shaped gap that reveals an entirely new pairing mechanism—possibly driven by the electrons themselves, rather than crystal vibrations,” Park said. Such direct measurement is a “first” for the field, giving scientists a more refined tool for identifying and understanding unconventional superconductivity.
Senior author Pablo Jarillo-Herrero emphasized that their method could help crack the code behind room-temperature superconductors: “This breakthrough may trigger deeper insights not just for graphene, but for the entire class of twistronic materials. Imagine grids and quantum computers that operate with zero energy loss—this is the holy grail we’re moving toward,” Jarillo-Herrero said in the MIT release.
Collaborators included scientists from Japan’s National Institute for Materials Science, broadening the impact of the research. The discovery builds on years of progress since the first magic-angle graphene experiments in 2018, opening what many now call the “twistronics” era—a field driven by stacking and twisting atom-thin materials to unlock uniquely quantum properties.
Looking ahead, the team plans to expand its analysis to other ultra-thin structures, hoping to map out electronic behavior not only for superconductors, but for a wider range of correlated quantum phases. “We can now directly observe electron pairs compete and coexist with other quantum states—this could allow us to design new materials from the ground up,” said Park in her public statement.
The research underscores the value of visualization in fundamental physics, suggesting that direct observation may be the missing link to controlling quantum phenomena for efficient, room-temperature technology.
Space & Physics
Atoms Speak Out: Physicists Use Electrons as Messengers to Unlock Secrets of the Nucleus
Physicists at MIT have devised a table-top method to peer inside an atom’s nucleus using the atom’s own electrons
Physicists at MIT have developed a pioneering method to look inside an atom’s nucleus — using the atom’s own electrons as tiny messengers within molecules rather than massive particle accelerators.
In a study published in science, the researchers demonstrated this approach using molecules of radium monofluoride, which pair a radioactive radium atom with a fluoride atom. The molecules act like miniature laboratories where electrons naturally experience extremely strong electric fields. Under these conditions, some electrons briefly penetrate the radium nucleus, interacting directly with protons and neutrons inside. This rare intrusion leaves behind a measurable energy shift, allowing scientists to infer details about the nucleus’ internal structure.
The team observed that these energy shifts, though minute — about one millionth of the energy of a laser photon — provide unambiguous evidence of interactions occurring inside the nucleus rather than outside it. “We now have proof that we can sample inside the nucleus,” said Ronald Fernando Garcia Ruiz, the Thomas A. Franck Associate Professor of Physics at MIT, in a statement. “It’s like being able to measure a battery’s electric field. People can measure its field outside, but to measure inside the battery is far more challenging. And that’s what we can do now.”
Traditionally, exploring nuclear interiors required kilometer-long particle accelerators to smash high-speed beams of electrons into targets. The MIT technique, by contrast, achieves similar insight with a table-top molecular setup. It makes use of the molecule’s natural electric environment to magnify these subtle interactions.
The radium nucleus, unlike most which are spherical, has an asymmetric “pear” shape that makes it a powerful system for studying violations of fundamental physical symmetries — phenomena that could help explain why the universe contains far more matter than antimatter. “The radium nucleus is predicted to be an amplifier of this symmetry breaking, because its nucleus is asymmetric in charge and mass, which is quite unusual,” Garcia Ruiz explained.
To conduct their experiments, the researchers produced radium monofluoride molecules at CERN’s Collinear Resonance Ionization Spectroscopy (CRIS) facility, trapped and cooled them in laser-guided chambers, and then measured laser-induced energy transitions with extreme precision. The work involved MIT physicists Shane Wilkins, Silviu-Marian Udrescu, and Alex Brinson, alongside international collaborators.
“Radium is naturally radioactive, with a short lifetime, and we can currently only produce radium monofluoride molecules in tiny quantities,” said Wilkins. “We therefore need incredibly sensitive techniques to be able to measure them.”
As Udrescu added, “When you put this radioactive atom inside of a molecule, the internal electric field that its electrons experience is orders of magnitude larger compared to the fields we can produce and apply in a lab. In a way, the molecule acts like a giant particle collider and gives us a better chance to probe the radium’s nucleus.”
Going forward, the MIT team aims to cool and align these molecules so that the orientation of their pear-shaped nuclei can be controlled for even more detailed mapping. “Radium-containing molecules are predicted to be exceptionally sensitive systems in which to search for violations of the fundamental symmetries of nature,” Garcia Ruiz said. “We now have a way to carry out that search”
Space & Physics
Physicists Double Precision of Optical Atomic Clocks with New Laser Technique
MIT researchers develop a quantum-enhanced method that doubles the precision and stability of optical atomic clocks, paving the way for portable, ultra-accurate timekeeping.
MIT physicists have unveiled a new technique that could significantly improve the precision and stability of next-generation optical atomic clocks, devices that underpin everything from mobile transactions to navigation apps. In a recent media statement, the MIT team explained: “Every time you check the time on your phone, make an online transaction, or use a navigation app, you are depending on the precision of atomic clocks. An atomic clock keeps time by relying on the ‘ticks’ of atoms as they naturally oscillate at rock-steady frequencies.”
Current atomic clocks rely on cesium atoms tracked with lasers at microwave frequencies, but scientists are advancing to clocks based on faster-ticking atoms like ytterbium, which can be tracked with lasers at higher, optical frequencies and discern intervals up to 100 trillion times per second.
A research group at MIT, led by Vladan Vuletić, the Lester Wolfe Professor of Physics, detailed that their newly developed method harnesses a laser-induced “global phase” in ytterbium atoms and boosts this effect using quantum amplification. Vuletić stated, “We think our method can help make these clocks transportable and deployable to where they’re needed.” The approach, called global phase spectroscopy, doubles the precision of an optical atomic clock, enabling it to resolve twice as many ticks per second compared to standard setups, and promises further gains with increasing atom counts.
The technique could pave the way for portable optical atomic clocks able to measure all manner of phenomena in various locations. Vuletić summarized the broader scientific ambitions: “With these clocks, people are trying to detect dark matter and dark energy, and test whether there really are just four fundamental forces, and even to see if these clocks can predict earthquakes.”
The MIT team has previously demonstrated improved clock precision by quantumly entangling hundreds of ytterbium atoms and using time reversal tricks to amplify their signals. Their latest advance applies these methods to much faster optical frequencies, where stabilizing the clock laser has always been a major challenge. “When you have atoms that tick 100 trillion times per second, that’s 10,000 times faster than the frequency of microwaves,” said Vuletić in the statement. Their experiments revealed a surprisingly useful “global phase” information about the laser frequency, previously thought irrelevant, unlocking the potential for even greater accuracy.
The research, led by Vuletić and joined by Leon Zaporski, Qi Liu, Gustavo Velez, Matthew Radzihovsky, Zeyang Li, Simone Colombo, and Edwin Pedrozo-Peñafiel of the MIT-Harvard Center for Ultracold Atoms, was published in Nature. They believe the technical benefits of the new method will make atomic clocks easier to run and enable stable, transportable clocks fit for future scientific exploration, including earthquake prediction, fundamental physics, and global time standards.
-
Space & Physics6 months agoIs Time Travel Possible? Exploring the Science Behind the Concept
-
Know The Scientist6 months agoNarlikar – the rare Indian scientist who penned short stories
-
Know The Scientist5 months agoRemembering S.N. Bose, the underrated maestro in quantum physics
-
Space & Physics3 months agoJoint NASA-ISRO radar satellite is the most powerful built to date
-
Society5 months agoAxiom-4 will see an Indian astronaut depart for outer space after 41 years
-
Society5 months agoShukla is now India’s first astronaut in decades to visit outer space
-
Society5 months agoWhy the Arts Matter As Much As Science or Math
-
Earth5 months agoWorld Environment Day 2025: “Beating plastic pollution”


