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First Results from the XENON10 Dark Matter Experiment at the Gran Sasso National Laboratory

J. AngleDepartment of Physics, University of Florida, Gainesville, Florida 32611, USAE. AprileColumbia UniversityF. ArneodoNational Institute for Nuclear PhysicsL. Baudis[Rwth Aachen University]A. BernsteinLawrence Livermore National LaboratoryA. BolozdynyaCase Western Reserve University ,Peter BrusovCase Western Reserve University ,L. CoelhoUniversity of Coimbra#TAB#C. E. DahlPrinceton UniversityL. DeViveirosBrown UniversityA. D. FerellaRWTH Aachen UniversityL. M. P. FernandesUniversity of Coimbra#TAB#S. FiorucciBrown UniversityR. J. GaitskellBrown UniversityKarl GiboniColumbia UniversityR. G. Gomez**Rice University;R. HastyYale University ;L. KastensYale University ;J. KwongPrinceton UniversityJ. A. M. LopesUniversity of Coimbra#TAB#N. MaddenLawrence Livermore National LaboratoryA. ManalaysayRWTH Aachen UniversityA. ManzurYale University ;D. N. McKinseyYale University ;M. E. MonzaniColumbia UniversityK. NiYale University ;U. Oberlack**Rice University;J. Orboeck[Rwth Aachen University]G. PlanteColumbia UniversityR. SantorelliColumbia UniversityJ.M.F. dos SantosUniversity of Coimbra#TAB#P. Shagin**Rice University;T. ShuttCase Western Reserve University ,P. SørensenBrown UniversityS. Schulte[Rwth Aachen University]C. D. WinantLawrence Livermore National LaboratoryM. T. YamashitaColumbia University
2008en
ABI

Аннотация

The XENON10 experiment at the Gran Sasso National Laboratory uses a 15 kg xenon dual phase time projection chamber to search for dark matter weakly interacting massive particles (WIMPs). The detector measures simultaneously the scintillation and the ionization produced by radiation in pure liquid xenon to discriminate signal from background down to 4.5 keV nuclear-recoil energy. A blind analysis of 58.6 live days of data, acquired between October 6, 2006, and February 14, 2007, and using a fiducial mass of 5.4 kg, excludes previously unexplored parameter space, setting a new 90% C.L. upper limit for the WIMP-nucleon spin-independent cross section of $8.8\ifmmode\times\else\texttimes\fi{}{10}^{\ensuremath{-}44}\text{ }\text{ }{\mathrm{cm}}^{2}$ for a WIMP mass of $100\text{ }\text{ }\mathrm{GeV}/{c}^{2}$, and $4.5\ifmmode\times\else\texttimes\fi{}{10}^{\ensuremath{-}44}\text{ }\text{ }{\mathrm{cm}}^{2}$ for a WIMP mass of $30\text{ }\text{ }\mathrm{GeV}/{c}^{2}$. This result further constrains predictions of supersymmetric models.

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