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arXiv:2210.08612·v2·High Energy Physics — Experiment

Rock Neutron Backgrounds from FNAL Neutrino Beamlines in the BDX-DRIFT Detector

D. Aristizabal Sierra🇨🇱 · J. L. Barrow🇺🇸 · B. Dutta🇺🇸 · D. Kim🇺🇸 · D. Snowden-Ifft🇺🇸 · L. Strigari🇺🇸 · M. H. Wood🇺🇸

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Abstract

The BDX-DRIFT collaboration seeks to detect low-energy nuclear recoils from CENS or BSM interactions at FNAL. Backgrounds due to rock neutrons are an important concern. We present a~\texttt{GENIE} and~\texttt{GEANT4} based model to estimate backgrounds from rock neutrons produced in neutrino-nucleus interactions within the rock walls surrounding the underground halls. This model was bench-marked against the COUPP experiment performed in the MINOS hall in the NuMI neutrino beam, and agreement is found between experimental results and the modeled result to within . Working from this validated model, a similar two-stage simulation was performed to estimate recoil backgrounds in the BDX-DRIFT detector across several beamlines. In the first stage utilizing~\texttt{GEANT4}, neutrons were tallied exiting the walls of a rectangular underground hall utilizing four different neutrino beam configurations. These results are presented for use by other underground experiments requiring estimations of their rock neutron backgrounds. For BDX-DRIFT, the second stage propagated neutrons from the walls and recorded energy deposited within a scintillator veto surrounding the detector and nuclear recoils within the detector's fiducial volume. The directional signal from the BDX-DRIFT detector allows additional background subtraction. A sample calculation of a myr exposure to the NuMI Low Energy (LE) beam configuration shows a CENS signal-to-noise ratio of 2.5.

Comments: Accepted by PRD. Covered by SCOAP

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