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Autori principali: Poudel, Sagar S., Pandey, Lekhraj, Calkins, Robert, Jha, Manish K., Loer, Ben, Orrell, John L., Robinson, Alan, Sander, Joel, Schnee, Richard W.
Natura: Preprint
Pubblicazione: 2026
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Accesso online:https://arxiv.org/abs/2605.16534
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author Poudel, Sagar S.
Pandey, Lekhraj
Calkins, Robert
Jha, Manish K.
Loer, Ben
Orrell, John L.
Robinson, Alan
Sander, Joel
Schnee, Richard W.
author_facet Poudel, Sagar S.
Pandey, Lekhraj
Calkins, Robert
Jha, Manish K.
Loer, Ben
Orrell, John L.
Robinson, Alan
Sander, Joel
Schnee, Richard W.
contents The radioactive decay from long-lived radioactive isotopes produced by cosmogenic activation can be an important background in direct-detection dark matter and neutrino experiments. In general, activation of materials located above ground is dominated by nuclear spallation due to energetic neutrons produced as secondary particles from primary cosmic ray interactions in the atmosphere. As experiments become larger and strive for greater sensitivity to rare events, it is increasingly important to store, assemble, and even fabricate the detector materials underground to mitigate cosmogenic activation. There has been no study of cosmogenic activation in detector materials at shallow depths (< 100 meter-water-equivalent). Unlike at aboveground or at deep depths, where neutrons are the major contributors to activation in materials, there are multiple competing physical processes that contribute to the activation in materials at shallow depths. We present a detailed calculation of the production of tritium in Ge and Si, as well as the production of 60Co in Cu, at shallow depths. We also obtain cosmogenic activation suppression factors and tritium production at several shallow-depth sites including the Stanford Underground Facility (SUF), where the SuperCDMS collaboration stored Ge, Si, and Cu detector materials for a substantial period of time.
format Preprint
id arxiv_https___arxiv_org_abs_2605_16534
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Cosmogenic activation in detector materials at shallow depths
Poudel, Sagar S.
Pandey, Lekhraj
Calkins, Robert
Jha, Manish K.
Loer, Ben
Orrell, John L.
Robinson, Alan
Sander, Joel
Schnee, Richard W.
Instrumentation and Detectors
Computational Physics
The radioactive decay from long-lived radioactive isotopes produced by cosmogenic activation can be an important background in direct-detection dark matter and neutrino experiments. In general, activation of materials located above ground is dominated by nuclear spallation due to energetic neutrons produced as secondary particles from primary cosmic ray interactions in the atmosphere. As experiments become larger and strive for greater sensitivity to rare events, it is increasingly important to store, assemble, and even fabricate the detector materials underground to mitigate cosmogenic activation. There has been no study of cosmogenic activation in detector materials at shallow depths (< 100 meter-water-equivalent). Unlike at aboveground or at deep depths, where neutrons are the major contributors to activation in materials, there are multiple competing physical processes that contribute to the activation in materials at shallow depths. We present a detailed calculation of the production of tritium in Ge and Si, as well as the production of 60Co in Cu, at shallow depths. We also obtain cosmogenic activation suppression factors and tritium production at several shallow-depth sites including the Stanford Underground Facility (SUF), where the SuperCDMS collaboration stored Ge, Si, and Cu detector materials for a substantial period of time.
title Cosmogenic activation in detector materials at shallow depths
topic Instrumentation and Detectors
Computational Physics
url https://arxiv.org/abs/2605.16534