German Science and Humanities Council recommends implementation of LEGEND 1000

Tracing a cosmic imbalance: LEGEND 1000 aims to shed light on the role neutrinos may have played in leaving matter behind after the Big Bang – making stars, planets, and life possible. The German Science and Humanities Council has now recommended implementation of this research infrastructure, which is jointly led by the Technical University of Munich (TUM) and the Max Planck Institute for Nuclear Physics (MPIK) with strong participation from researchers of the Cluster of Excellence ORIGINS. The Council recognizes the project’s outstanding scientific significance for international particle and nuclear physics, as well as its considerable potential to drive innovation for industry and society.

The LEGEND-200 detector array at the Gran Sasso Underground Laboratory. Photo: Michael Willers / TUM

Why does the universe consist of matter – rather than equal amounts of matter and antimatter? This fundamental question is at the heart of LEGEND‑1000, a major international experiment advanced by TUM together with MPIK. At the Gran Sasso underground laboratory in Italy, researchers are searching for a process known as neutrinoless double-beta decay – an extremely rare phenomenon that has never been observed. Detecting it would show that neutrinos are their own antiparticles and could provide crucial clues to how the excess of matter emerged from which today’s universe evolved after the Big Bang. 

A Next-Generation Experiment

With 1,000 kilograms of highly sensitive germanium detectors, exceptional energy resolution, and an ultra-low background environment, LEGEND‑1000 ranks among the world’s most ambitious astroparticle physics experiments. At the same time, the research infrastructure will open up new opportunities in the search for dark matter, the study of solar and supernova neutrinos, and the exploration of phenomena beyond the Standard Model of particle physics.

The German Science and Humanities Council has now recommended implementing Germany’s contribution to LEGEND‑1000 as part of the national prioritization process for large-scale research infrastructures conducted by the Federal Ministry of Research, Technology and Space (BMFTR). The recommendation is based on a scientific review that attests to the project’s outstanding importance for particle and nuclear physics as a whole. In its statement, the Council emphasizes that the expected insights extend far beyond neutrino physics and address foundational questions about our understanding of the universe. 

Scientific Impact and Technological Innovation

It also highlights the project’s technological momentum: the demanding experimental setup will advance the development of highly sensitive detectors, cryogenic systems, and ultra-low-background materials, enabling applications in areas such as environmental monitoring, radiation detection, medical imaging, and quantum computing. German and European companies are already involved in developing key components.

 

Website of the experiment 

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Contacts:

Prof. Dr. Stefan Schönert
Chair of Experimental & Astroparticle Physics
email: schoenert(at)ph.tum.de

Prof. Dr. Susanne Mertens
Director Max-Planck-Institut für Kernphysik
TUM Distinguished Affiliated Professor
email: susanne.mertens(at)mpi-hd.mpg.de