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Dive into the research topics where L. DeViveiros is active.

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Featured researches published by L. DeViveiros.


Physical Review Letters | 2011

Search for light dark matter in XENON10 data.

J. Angle; E. Aprile; F. Arneodo; L. Baudis; A. Bernstein; A. Bolozdynya; L. Coelho; C. E. Dahl; L. DeViveiros; A. D. Ferella; L.M.P. Fernandes; S. Fiorucci; R.J. Gaitskell; Karl-Ludwig Giboni; R. Gomez; R. Hasty; L. Kastens; J. Kwong; J. A. M. Lopes; N. Madden; A. Manalaysay; A. Manzur; D. N. McKinsey; M.E. Monzani; K. Ni; U. Oberlack; J. Orboeck; G. Plante; R. Santorelli; J.M.F. dos Santos

We report results of a search for light (≲10  GeV) particle dark matter with the XENON10 detector. The event trigger was sensitive to a single electron, with the analysis threshold of 5 electrons corresponding to 1.4 keV nuclear recoil energy. Considering spin-independent dark matter-nucleon scattering, we exclude cross sections σ(n)>7×10(-42)  cm(2), for a dark matter particle mass m(χ)=7  GeV. We find that our data strongly constrain recent elastic dark matter interpretations of excess low-energy events observed by CoGeNT and CRESST-II, as well as the DAMA annual modulation signal.


Physical Review Letters | 2008

Limits on spin-dependent WIMP-nucleon cross-sections from the XENON10 experiment

J. Angle; E. Aprile; F. Arneodo; L. Baudis; A. Bernstein; A. Bolozdynya; L. Coelho; C. E. Dahl; L. DeViveiros; A. D. Ferella; L.M.P. Fernandes; S. Fiorucci; R.J. Gaitskell; K. L. Giboni; R. Gomez; R. Hasty; L. Kastens; J. Kwong; J. A. M. Lopes; N. Madden; A. Manalaysay; A. Manzur; D. N. McKinsey; M.E. Monzani; K. Ni; U. Oberlack; J. Orboeck; G. Plante; R. Santorelli; J.M.F. dos Santos

XENON10 is an experiment to directly detect weakly interacting massive particles (WIMPs), which may comprise the bulk of the nonbaryonic dark matter in our Universe. We report new results for spin-dependent WIMP-nucleon interactions with 129Xe and 131Xe from 58.6 live days of operation at the Laboratori Nazionali del Gran Sasso. Based on the nonobservation of a WIMP signal in 5.4 kg of fiducial liquid xenon mass, we exclude previously unexplored regions in the theoretically allowed parameter space for neutralinos. We also exclude a heavy Majorana neutrino with a mass in the range of approximately 10 GeV/c2-2 TeV/c2 as a dark matter candidate under standard assumptions for its density and distribution in the galactic halo.


Physical Review D | 2009

Constraints on inelastic dark matter from XENON10

J. Angle; E. Aprile; F. Arneodo; L. Baudis; A. Bernstein; A. Bolozdynya; L. Coelho; C. E. Dahl; L. DeViveiros; A. D. Ferella; L.M.P. Fernandes; S. Fiorucci; R.J. Gaitskell; Karl-Ludwig Giboni; R. Gomez; R. Hasty; L. Kastens; J. Kwong; J. A. M. Lopes; N. Madden; A. Manalaysay; A. Manzur; D. N. McKinsey; M.E. Monzani; K. Ni; U. Oberlack; J. Orboeck; G. Plante; R. Santorelli; J.M.F. dos Santos

It has been suggested that dark matter particles which scatter inelastically from detector target nuclei could explain the apparent incompatibility of the DAMA modulation signal (interpreted as evidence for particle dark matter) with the null results from CDMS-II and XENON10. Among the predictions of inelastically interacting dark matter are a suppression of low-energy events, and a population of nuclear recoil events at higher nuclear recoil equivalent energies. This is in stark contrast to the well-known expectation of a falling exponential spectrum for the case of elastic interactions. We present a new analysis of XENON10 dark matter search data extending to E{sub nr} = 75 keV nuclear recoil equivalent energy. Our results exclude a significant region of previously allowed parameter space in the model of inelastically interacting dark matter. In particular, it is found that dark matter particle masses m{sub x} {approx}> 150 GeV are disfavored.


Nuclear Instruments & Methods in Physics Research Section A-accelerators Spectrometers Detectors and Associated Equipment | 2009

The scintillation and ionization yield of liquid xenon for nuclear recoils

P. Sorensen; A. Manzur; C. E. Dahl; J. Angle; E. Aprile; F. Arneodo; L. Baudis; A. Bernstein; A. Bolozdynya; L. Coelho; L. DeViveiros; A. D. Ferella; L.M.P. Fernandes; S. Fiorucci; R.J. Gaitskell; Karl-Ludwig Giboni; R. Gomez; R. Hasty; L. Kastens; J. Kwong; J. A. M. Lopes; N. Madden; A. Manalaysay; D. N. McKinsey; M.E. Monzani; K. Ni; U. Oberlack; J. Orboeck; G. Plante; R. Santorelli

XENON10 is an experiment designed to directly detect particle dark matter. It is a dual phase (liquid/gas) xenon time-projection chamber with 3D position imaging. Particle interactions generate a primary scintillation signal (S1) and ionization signal (S2), which are both functions of the deposited recoil energy and the incident particle type. We present a new precision measurement of the relative scintillation yield View the MathML source and the absolute ionization yield View the MathML source, for nuclear recoils in xenon. A dark matter particle is expected to deposit energy by scattering from a xenon nucleus. Knowledge of View the MathML source is therefore crucial for establishing the energy threshold of the experiment; this in turn determines the sensitivity to particle dark matter. Our View the MathML source measurement is in agreement with recent theoretical predictions above 15 keV nuclear recoil energy, and the energy threshold of the measurement is View the MathML source. A knowledge of the ionization yield View the MathML source is necessary to establish the trigger threshold of the experiment. The ionization yield View the MathML source is measured in two ways, both in agreement with previous measurements and with a factor of 10 lower energy threshold.


Astroparticle Physics | 2011

Design and performance of the XENON10 dark matter experiment

E. Aprile; J. Angle; F. Arneodo; L. Baudis; A. Bernstein; A. Bolozdynya; P.P. Brusov; L. Coelho; C. E. Dahl; L. DeViveiros; A. D. Ferella; L.M.P. Fernandes; S. Fiorucci; R.J. Gaitskell; Karl-Ludwig Giboni; R. Gomez; R. Hasty; L. Kastens; J. Kwong; J. A. M. Lopes; N. Madden; A. Manalaysay; A. Manzur; D. N. McKinsey; M.E. Monzani; K. Ni; U. Oberlack; J. Orboeck; D. Orlandi; G. Plante


arXiv: Instrumentation and Detectors | 2011

Radio-assay of Titanium samples for the LUX Experiment

D.S. Akerib; K.T. Lesko; K. Kazkaz; J.R. Verbus; M. Sweany; D.C. Malling; P. Sorensen; A. Lyashenko; D. Carr; D.-M. Mei; M. Szydagis; W. Skulski; E. Bernard; K.R. Gibson; T. Stiegler; J. Mock; S. Dazeley; J. T. White; D.S. Leonard; D. N. McKinsey; M. Wlasenko; N. A. Larsen; N. Walsh; C. Lee; R. Webb; C.H. Faham; S. Uvarov; E. Druszkiewicz; K. Clark; S. B. Cahn


arXiv: Instrumentation and Methods for Astrophysics | 2010

Lowering the low-energy threshold of xenon detectors

P. Sorensen; C. Winant; E. Aprile; L. DeViveiros; J. Kwong; Karl-Ludwig Giboni; J. A. M. Lopes; M.E. Monzani; R. Santorelli; K. Ni; A. D. Ferella; A. Bolozdynya; C. E. Dahl; N. Madden; J. Orboeck; M. Yamashita; A. Manalaysay; R. Gomez; A. Manzur; L. Coelho; D. N. McKinsey; J. Angle; A. Bernstein; P. Brusov; L.M.P. Fernandes; F. Arneodo; L. Kastens; R.J. Gaitskell; U. Oberlack; S. Schulte


To appear in the proceedings of | 2004

The XENON dark matter search experiment

E. Aprile; L. DeViveiros; Karl-Ludwig Giboni; C. Winant; T. Shutt; P. Sorensen; P. Majewski; A. Bernstein; J. Kwong; R. Hasty; M. Yamashita; L. Baudis; K. Ni; C. Hagmann; R.J. Gaitskell; U. Oberlack; D. N. McKinsey


Physical Review Letters | 2013

Erratum: Search for light dark matter in XENON10 data (Physical Review Letters (2011) 107 (051301))

J. Angle; E. Aprile; F. Arneodo; L. Baudis; A. Bernstein; A. Bolozdynya; L. Coelho; C. E. Dahl; L. DeViveiros; A. D. Ferella; L.M.P. Fernandes; S. Fiorucci; R.J. Gaitskell; Karl-Ludwig Giboni; R. Gomez; R. Hasty; L. Kastens; J. Kwong; J. A. M. Lopes; N. Madden; A. Manalaysay; A. Manzur; D. N. McKinsey; M.E. Monzani; K. Ni; U. Oberlack; J. Orboeck; G. Plante; R. Santorelli; J.M.F. dos Santos


arXiv: Astrophysics | 2007

3D Position Sensitive XeTPC for Dark Matter Search

J. Angle; E. Aprile; F. Arneodo; L. Baudis; A. Bernstein; A. Bolozdynya; L. Coelho; E. Dahl; L. DeViveiros; A. Ferella; L.M.P. Fernandes; S. Fiorucci; R.J. Gaitskell; Karl-Ludwig Giboni; R. Gomez; R. Hasty; J. Kwong; J. A. M. Lopes; N. Madden; A. Manalaysay; A. Manzur; D. N. McKinsey; M.E. Monzani; K. Ni; U. Oberlack; J. Orboeck; G. Plante; J. Santos; P. Shagin; T. Shutt

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A. Bernstein

Lawrence Livermore National Laboratory

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J. Kwong

Case Western Reserve University

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A. Bolozdynya

Case Western Reserve University

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