Our Mission

The search for life beyond our solar system starts here

We inspire and unite humankind in the way we perceive ourselves and our home planet Earth. We encourage current and future generations to pursue bold visions. We embrace scientific and technological challenges, question established mindsets, and pioneer new ways of collaborations. We develop and implement the first dedicated and most powerful space mission to find life beyond the Solar System and investigate the diversity of other worlds.

scientific motivation


Exoplanet Science

Exoplanet science is omnipresent on the roadmaps of all major space agencies and ground-based observatories, and continues to drive the research activities of an
increasing number of scientists worldwide. One of the long-term objectives is the investigation of the atmospheric properties of a statistically significant number (>100) of terrestrial exoplanets. The key motivations are to:
Search for and identify potential biosignatures (such as oxygen, ozone, methane and phosphine) in the exoplanet atmospheres
Understand the diversity of planetary bodies and how our Solar System fits into the larger context of (exo)planetary systems)

Key steps towards achieving these objectives will be possible in the coming 10-15 years with ongoing and upcoming missions such as JWST, PLATO, the Roman Space Telescope or ARIEL. Also, the ground-based Extremely Large Telescope will contributed. However, no mission or instrument will provide a large statistical dataset of terrestrial exoplanets that is ultimately needed. Given the precision and sensitivity requirements, a space mission seems inevitable for achieving the science goals. NASA is pursuing the Habitable Worlds Observatory (HWO) , a large infrared/optical/ultraviolet space telescope recommended by the National Academies’ Pathways to Discovery in Astronomy and Astrophysics for the 2020s. HWO will detect and characterize the reflected light of terrestrial exoplanets orbiting Sun-like stars. As a nulling interferometer working at mid-infrared wavelength, LIFE follows a complementary and more versatile approach that probes the intrinsic thermal emission of exoplanets. LIFE can probe for a wider range of atmospheric biosignatures in exoplanets orbiting a wider range of host stars and will also have access to atmospheric technosignatures.