Physics reach of the XENON1T dark matter experiment
Abstract
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 tonne fiducial volume and (, ) keV electronic recoil equivalent energy region, before applying any selection to discriminate between electronic and nuclear recoils, is (, mainly due to the decay of daughters inside the xenon target. The nuclear recoil background in the corresponding nuclear recoil equivalent energy region (, ) keV, is composed of ( from radiogenic neutrons, ( from coherent scattering of neutrinos, and less than ( 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 , which affects both the signal from WIMPs and the nuclear recoil backgrounds. After a y measurement in t fiducial volume, the sensitivity reaches a minimum cross section of cm at m= GeV/.
Keywords
Cite
@article{arxiv.1512.07501,
title = {Physics reach of the XENON1T dark matter experiment},
author = {The XENON collaboration and E. Aprile and J. Aalbers and F. Agostini and M. Alfonsi and F. D. Amaro and M. Anthony and L. Arazi and F. Arneodo and C. Balan and P. Barrow and L. Baudis and B. Bauermeister and T. Berger and P. Breur and A. Breskin and A. Brown and E. Brown and S. Bruenner and G. Bruno and R. Budnik and L. Bütikofer and J. M. R. Cardoso and M. Cervantes and D. Cichon and D. Coderre and A. P. Colijn and J. Conrad and H. Contreras and J. P. Cussonneau and M. P. Decowski and P. de Perio and P. Di Gangi and A. Di Giovanni and E. Duchovni and S. Fattori and A. D. Ferella and A. Fieguth and D. Franco and W. Fulgione and M. Galloway and M. Garbini and C. Geis and L. W. Goetzke and Z. Greene and C. Grignon and E. Gross and W. Hampel and C. Hasterok and R. Itay and F. Kaether and B. Kaminsky and G. Kessler and A. Kish and H. Landsman and R. F. Lang and D. Lellouch and L. Levinson and M. Le Calloch and C. Levy and S. Lindemann and M. Lindner and J. A. M. Lopes and A. Lyashenko and S. Macmullin and A. Manfredini and T. Marrodán Undagoitia and J. Masbou and F. V. Massoli and D. Mayani and A. J. Melgarejo Fernandez and Y. Meng and M. Messina and K. Micheneau and B. Miguez and A. Molinario and M. Murra and J. Naganoma and U. Oberlack and S. E. A. Orrigo and P. Pakarha and B. Pelssers and R. Persiani and F. Piastra and J. Pienaar and G. Plante and N. Priel and L. Rauch and S. Reichard and C. Reuter and A. Rizzo and S. Rosendahl and N. Rupp and J. M. F. dos Santos and G. Sartorelli and M. Scheibelhut and S. Schindler and J. Schreiner and M. Schumann and L. Scotto Lavina and M. Selvi and P. Shagin and H. Simgen and A. Stein and D. Thers and A. Tiseni and G. Trinchero and C. Tunnell and M. von Sivers and R. Wall and H. Wang and M. Weber and Y. Wei and C. Weinheimer and J. Wulf and Y. Zhang},
journal= {arXiv preprint arXiv:1512.07501},
year = {2016}
}
Comments
36 pages, 18 figures, published by JCAP