Underground laboratories provide the ultra-low background and low-vibration environments essential for rare-event searches, gravitational-wave detection, and quantum sensing technologies. We report a comprehensive environmental characterisation of the Bedretto tunnel in Ticino, Switzerland, a site offering horizontal access, excellent infrastructure, and the potential to be Europe’s second deepest and quietest underground laboratory. At the prospective physics site, located beneath a granite overburden exceeding 1400 m, we measure fluxes of: cosmic-muon (2.54 ± 0.97)×10⁻⁸ μ/s/cm², γ-ray 5.67±0.37 γ/cm²/sec, and neutron fluxes (5.56±0.26)×10⁻⁵ neutrons/cm²/sec, as well as the radon concentration, magnetic-field power spectrum, and seismic backgrounds. The muon flux is suppressed by six orders of magnitude relative to the surface, consistent with an effective depth of about 4000 m water equivalent. Gamma-ray and neutron measurements reflect the local geology and guide shielding requirements for future particle and nuclear physics experiments. Magnetic and seismic noise levels are found to be exceptionally low, meeting or exceeding the criteria for next-generation atom-interferometric gravitational-wave detectors. These results establish the site as a highly competitive, accessible deep-underground location for fundamental-physics experiments.

Characterisation of the Bedretto underground site for fundamental physics experiments / Penning, B., Angelides, N., Baudis, L., Birch, H., Flowers, A., Jörg, F., Kavner, A., Soares-Santos, M., Remesan Sreekala, A., Wüthrich, J., Zhao, G., Capelli, C., Clinton, J., Cuenca García, J., Crivelli, P., Giardini, D., Gkougkousis, E., Haddad, Y., Hertrich, M., Hochreutener, R., et al.. - In: THE EUROPEAN PHYSICAL JOURNAL. C, PARTICLES AND FIELDS. - ISSN 1434-6044. - 86:7(2026). [10.1140/epjc/s10052-026-15916-5]

Characterisation of the Bedretto underground site for fundamental physics experiments

Capelli, Chiara;
2026

Abstract

Underground laboratories provide the ultra-low background and low-vibration environments essential for rare-event searches, gravitational-wave detection, and quantum sensing technologies. We report a comprehensive environmental characterisation of the Bedretto tunnel in Ticino, Switzerland, a site offering horizontal access, excellent infrastructure, and the potential to be Europe’s second deepest and quietest underground laboratory. At the prospective physics site, located beneath a granite overburden exceeding 1400 m, we measure fluxes of: cosmic-muon (2.54 ± 0.97)×10⁻⁸ μ/s/cm², γ-ray 5.67±0.37 γ/cm²/sec, and neutron fluxes (5.56±0.26)×10⁻⁵ neutrons/cm²/sec, as well as the radon concentration, magnetic-field power spectrum, and seismic backgrounds. The muon flux is suppressed by six orders of magnitude relative to the surface, consistent with an effective depth of about 4000 m water equivalent. Gamma-ray and neutron measurements reflect the local geology and guide shielding requirements for future particle and nuclear physics experiments. Magnetic and seismic noise levels are found to be exceptionally low, meeting or exceeding the criteria for next-generation atom-interferometric gravitational-wave detectors. These results establish the site as a highly competitive, accessible deep-underground location for fundamental-physics experiments.
2026
underground laboratory; gravitational waves; dark matter; rare event searches; radiopurity; radio assay; atom interferometry; neutrinoless double beta decay
01 Pubblicazione su rivista::01a Articolo in rivista
Characterisation of the Bedretto underground site for fundamental physics experiments / Penning, B., Angelides, N., Baudis, L., Birch, H., Flowers, A., Jörg, F., Kavner, A., Soares-Santos, M., Remesan Sreekala, A., Wüthrich, J., Zhao, G., Capelli, C., Clinton, J., Cuenca García, J., Crivelli, P., Giardini, D., Gkougkousis, E., Haddad, Y., Hertrich, M., Hochreutener, R., et al.. - In: THE EUROPEAN PHYSICAL JOURNAL. C, PARTICLES AND FIELDS. - ISSN 1434-6044. - 86:7(2026). [10.1140/epjc/s10052-026-15916-5]
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11573/1773327
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