Scientists Are Hunting Extraterrestrial Life Right Now, Here's Where the Search Actually Stands
Aishwarya Kapoor | Times Life Bureau | Aug 14, 2026, 07:55 IST
Scientists Are Hunting Extraterrestrial Life Right Now, Here's Where the Search Actually Stands
Image credit : Times Life Bureau
The search for extraterrestrial life has moved well past radio telescopes pointed at empty sky. Scientists are now reading biosignatures in distant exoplanets, drilling into Martian soil, and listening to ocean worlds in our own solar system. The missions are real, the targets are specific, and the scientists running them think they are closer than any generation before them.
The Ocean Under Europa's Ice Is Older Than Any Sea on Earth
Enceladus, Saturn's small moon, already delivered a result that changed the conversation. The Cassini spacecraft, before it was deliberately crashed into Saturn in 2017, flew through Enceladus's geysers and detected molecular hydrogen, silica nanoparticles, and complex organic compounds. Molecular hydrogen in that context signals active hydrothermal vents on the seafloor, the same environment that sustains chemosynthetic ecosystems kilometres below the surface of Earth's oceans, with no sunlight at all.
Mars Is Not Dead, The Question Is How Long It Has Been Quiet
The European Space Agency's ExoMars Rosalind Franklin rover, long delayed, is designed to drill two metres below the Martian surface, deeper than any previous Mars mission. Radiation destroys organic molecules at the surface, but two metres down, material could have been shielded for hundreds of millions of years. The rover carries a instrument called MOMA, the Mars Organic Molecule Analyser, built to detect the specific molecular chirality that distinguishes biological compounds from abiotic ones. Life on Earth produces molecules with a consistent handedness, left-handed amino acids, right-handed sugars. Random chemistry produces equal mixtures. If MOMA finds a bias, it is a signal worth taking seriously.
Biosignatures in Distant Atmospheres, The James Webb Space Telescope Changes the Scale
In 2023, Webb detected carbon dioxide and sulphur dioxide in the atmosphere of K2-18b, a planet about 8.6 times Earth's mass orbiting a red dwarf star 120 light-years away. It also reported a tentative detection of dimethyl sulphide, a compound that, on Earth, is produced almost exclusively by marine phytoplankton. The researchers were careful: the signal was at the edge of statistical significance, and the team explicitly called for confirmation. Abiotic pathways for dimethyl sulphide production in planetary atmospheres are not fully ruled out. But K2-18b is now one of the most watched exoplanets in astrobiology. Webb will return to it.
The broader point is that Webb has given scientists a tool to screen dozens of exoplanets for biosignatures without leaving Earth. The list of candidates in or near the habitable zones of their stars runs into the hundreds. ISRO's own planned contributions to space science, including future Earth-observation and deep-space missions, may eventually feed data into the global astrobiology picture, though India's current flagship in solar science, Aditya-L1, is focused on the Sun rather than exoplanet atmospheres.
The Radio Search Has Narrowed, SETI Is No Longer Pointing Randomly
The search has also moved beyond radio. Optical SETI looks for laser pulses. Technosignature research asks what industrial civilisations leave behind in planetary atmospheres, the same atmospheric chemistry methods Webb uses for biosignatures, applied to signs of technology rather than biology.
How Close Do the Scientists Actually Think They Are?
Nathalie Cabrol, an astrobiologist at the SETI Institute who studies extreme environments on Earth as analogues for Mars, puts the Mars question differently: she thinks the more important question is not whether life exists on Mars now, but whether it ever did, and whether we will recognise it if we find it. Life that evolved independently on Mars might use chemistry different enough from Earth life that our instruments, designed around Earth biology, could miss it entirely.
The honest answer to how close is: close enough that specific missions with specific instruments are pointed at specific targets, and the scientists running those missions are not speaking in decades-long timescales anymore. Europa Clipper data will start arriving before 2031. Webb is observing now. Perseverance's samples are waiting for retrieval. The search has a schedule.