Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Physics reach of the XENON1T dark matter experiment.

View through CrossRef
The XENON1T experiment is currently in the commissioning phase at the Laboratori Nazionali del Gran Sasso, Italy. In this article we study the experiment's expected sensitivity to the spin-independent WIMP-nucleon interaction cross section, based on Monte Carlo predictions of the electronic and nuclear recoil backgrounds. The total electronic recoil background in 1 tonne fiducial volume and (1, 12) keV electronic recoil equivalent energy region, before applying any selection to discriminate between electronic and nuclear recoils, is (1.80 ± 0.15) · 10 −4 (kg·day·keV) −1 , mainly due to the decay of 222 Rn daughters inside the xenon target. The nuclear recoil background in the corresponding nuclear recoil equivalent energy region (4, 50) keV, is composed of (0.6 ± 0.1) (t·y) −1 from radiogenic neutrons, (1.8 ± 0.3) · 10 −2 (t·y) −1 from coherent scattering of neutrinos, and less than 0.01 (t·y) −1 from muon-induced neutrons. The sensitivity of XENON1T is calculated with the Profile Likelihood Ratio method, after converting the deposited energy of electronic and nuclear recoils into the scintillation and ionization signals seen in the detector. We take into account the systematic uncertainties on the photon and electron emission model, and on the estimation of the backgrounds, treated as nuisance parameters. The main contribution comes from the relative scintillation efficiency ℒ eff , which affects both the signal from WIMPs and the nuclear recoil backgrounds. After a 2 y measurement in 1 t fiducial volume, the sensitivity reaches a minimum cross section of 1.6 · 10 −47 cm 2 at m χ  = 50 GeV/ c 2 .
Title: Physics reach of the XENON1T dark matter experiment.
Description:
The XENON1T experiment is currently in the commissioning phase at the Laboratori Nazionali del Gran Sasso, Italy.
In this article we study the experiment's expected sensitivity to the spin-independent WIMP-nucleon interaction cross section, based on Monte Carlo predictions of the electronic and nuclear recoil backgrounds.
The total electronic recoil background in 1 tonne fiducial volume and (1, 12) keV electronic recoil equivalent energy region, before applying any selection to discriminate between electronic and nuclear recoils, is (1.
80 ± 0.
15) · 10 −4 (kg·day·keV) −1 , mainly due to the decay of 222 Rn daughters inside the xenon target.
The nuclear recoil background in the corresponding nuclear recoil equivalent energy region (4, 50) keV, is composed of (0.
6 ± 0.
1) (t·y) −1 from radiogenic neutrons, (1.
8 ± 0.
3) · 10 −2 (t·y) −1 from coherent scattering of neutrinos, and less than 0.
01 (t·y) −1 from muon-induced neutrons.
The sensitivity of XENON1T is calculated with the Profile Likelihood Ratio method, after converting the deposited energy of electronic and nuclear recoils into the scintillation and ionization signals seen in the detector.
We take into account the systematic uncertainties on the photon and electron emission model, and on the estimation of the backgrounds, treated as nuisance parameters.
The main contribution comes from the relative scintillation efficiency ℒ eff , which affects both the signal from WIMPs and the nuclear recoil backgrounds.
After a 2 y measurement in 1 t fiducial volume, the sensitivity reaches a minimum cross section of 1.
6 · 10 −47 cm 2 at m χ  = 50 GeV/ c 2 .

Related Results

Sun heated MeV-scale dark matter and the XENON1T electron recoil excess
Sun heated MeV-scale dark matter and the XENON1T electron recoil excess
Abstract The XENON1T collaboration reported an excess of the low-energy electron recoil events between 1 and 7 keV. We explore the possibility to explain such ...
Application and modeling of an online distillation method to reduce krypton and argon in XENON1T
Application and modeling of an online distillation method to reduce krypton and argon in XENON1T
Abstract A novel online distillation technique was developed for the XENON1T dark matter experiment to reduce intrinsic background components more volatile than xeno...
Faint and Extended Galaxies as Probes for Understanding the Nature of Dark Matter Particles
Faint and Extended Galaxies as Probes for Understanding the Nature of Dark Matter Particles
Dark matter remains one of the most enigmatic components of the universe, constituting approximately 27% of its total mass-energy content, yet its fundamental nature is still poorl...
$$^{222}$$Rn  emanation measurements for the XENON1T experiment
$$^{222}$$Rn  emanation measurements for the XENON1T experiment
AbstractThe selection of low-radioactive construction materials is of utmost importance for the success of low-energy rare event search experiments. Besides radioactive contaminant...
Searches for connections between dark matter and high-energy neutrinos with IceCube
Searches for connections between dark matter and high-energy neutrinos with IceCube
Abstract In this work, we present the results of searches for signatures of dark matter decay or annihilation into Standard Model particles, ...
The dark matter and dark energy
The dark matter and dark energy
The dark matter and dark energy are one of the biggest challenges facing contemporary physics and astronomy. Dark energy and dark matter play an important role the universe. The am...
KONTESTASI TASAWUF SUNNÎ DAN TASAWUF FALSAFÎ DI NUSANTARA
KONTESTASI TASAWUF SUNNÎ DAN TASAWUF FALSAFÎ DI NUSANTARA
<p>This article scrutinizes the history of Islamic development in Nusantara between 15th to 18th centuries, which has been colored from theological mysticism thought. Uniquel...
Effective field theory and inelastic dark matter results from XENON1T
Effective field theory and inelastic dark matter results from XENON1T
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 effectiv...

Back to Top