In this work, we expand on the XENON1T nuclear recoil searches to study the individual signals of dark matter interactions from operators up to dimension eight in a chiral effective field theory (ChEFT) and a model of inelastic dark matter (iDM). We analyze data from two science runs of the XENON1T detector totaling 1  t×yr exposure. For these analyses, we extended the region of interest from [4.9, 40.9]  keV_NR to [4.9, 54.4]  keV_NR to enhance our sensitivity for signals that peak at nonzero energies. We show that the data are consistent with the background-only hypothesis, with a small background overfluctuation observed peaking between 20 and 50  keV_NR, resulting in a maximum local discovery significance of 1.7⁢𝜎 for the Vector⊗Vector_strange ChEFT channel for a dark matter particle of 70  GeV/c² and 1.8⁢𝜎 for an iDM particle of 50  GeV/c² with a mass splitting of 100  keV/c². For each model, we report 90% confidence level upper limits. We also report upper limits on three benchmark models of dark matter interaction using ChEFT where we investigate the effect of isospin-breaking interactions. We observe rate-driven cancellations in regions of the isospin-breaking couplings, leading to up to 6 orders of magnitude weaker upper limits with respect to the isospin-conserving case.

Effective field theory and inelastic dark matter results from XENON1T / Aprile, E., Abe, K., Agostini, F., Ahmed Maouloud, S., Althueser, L., Andrieu, B., Angelino, E., Angevaare, J.R., Antochi, V.C., Antón Martin, D., Arneodo, F., Baudis, L., Baxter, A.L., Bellagamba, L., Biondi, R., Bismark, A., Brown, A., Bruenner, S., Bruno, G., Budnik, R., et al.. - In: PHYSICAL REVIEW D. - ISSN 2470-0010. - 109:11(2024), pp. 1-17. [10.1103/PhysRevD.109.112017]

Effective field theory and inelastic dark matter results from XENON1T

Capelli, C.;
2024

Abstract

In this work, we expand on the XENON1T nuclear recoil searches to study the individual signals of dark matter interactions from operators up to dimension eight in a chiral effective field theory (ChEFT) and a model of inelastic dark matter (iDM). We analyze data from two science runs of the XENON1T detector totaling 1  t×yr exposure. For these analyses, we extended the region of interest from [4.9, 40.9]  keV_NR to [4.9, 54.4]  keV_NR to enhance our sensitivity for signals that peak at nonzero energies. We show that the data are consistent with the background-only hypothesis, with a small background overfluctuation observed peaking between 20 and 50  keV_NR, resulting in a maximum local discovery significance of 1.7⁢𝜎 for the Vector⊗Vector_strange ChEFT channel for a dark matter particle of 70  GeV/c² and 1.8⁢𝜎 for an iDM particle of 50  GeV/c² with a mass splitting of 100  keV/c². For each model, we report 90% confidence level upper limits. We also report upper limits on three benchmark models of dark matter interaction using ChEFT where we investigate the effect of isospin-breaking interactions. We observe rate-driven cancellations in regions of the isospin-breaking couplings, leading to up to 6 orders of magnitude weaker upper limits with respect to the isospin-conserving case.
2024
xenon; effective field theory; inelastic dark matter
01 Pubblicazione su rivista::01a Articolo in rivista
Effective field theory and inelastic dark matter results from XENON1T / Aprile, E., Abe, K., Agostini, F., Ahmed Maouloud, S., Althueser, L., Andrieu, B., Angelino, E., Angevaare, J.R., Antochi, V.C., Antón Martin, D., Arneodo, F., Baudis, L., Baxter, A.L., Bellagamba, L., Biondi, R., Bismark, A., Brown, A., Bruenner, S., Bruno, G., Budnik, R., et al.. - In: PHYSICAL REVIEW D. - ISSN 2470-0010. - 109:11(2024), pp. 1-17. [10.1103/PhysRevD.109.112017]
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11573/1773590
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