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Featured researches published by D. R. Grant.


Science | 2009

Dark matter search results from the CDMS II experiment.

J. Cooley; Z. Ahmed; D. S. Akerib; S. Arrenberg; C. N. Bailey; D. Balakishiyeva; L. Baudis; D. A. Bauer; P. L. Brink; T. Bruch; R. Bunker; B. Cabrera; David O. Caldwell; P. Cushman; M. Daal; F. DeJongh; M. R. Dragowsky; L. Duong; S. Fallows; E. Figueroa-Feliciano; J. Filippini; M. Fritts; S. R. Golwala; D. R. Grant; J. Hall; R. Hennings-Yeomans; S. A. Hertel; D. Holmgren; L. Hsu; M. E. Huber

News from the Dark Side? Dark matter is thought to represent 85% of all matter in the universe and to have been responsible for the formation of structure in the early universe, but its nature is still a mystery. Ahmed et al. (p. 1619, published online 11 February; see the Perspective by Lang) describe the results from the completed Cryogenic Dark Matter Search (CDMS II) experiment, which searched for dark matter in the form of weakly interacting massive particles (WIMP). Two candidate signals were observed, whereas only one background event was expected. The probability of having two or more events from the background would have been 23%. The results of this analysis cannot be interpreted with confidence as evidence for WIMP interactions, but, at the same time, neither event can be ruled out as representing signal. Details of possible, but unlikely, detection events produced by dark matter are reported. Astrophysical observations indicate that dark matter constitutes most of the mass in our universe, but its nature remains unknown. Over the past decade, the Cryogenic Dark Matter Search (CDMS II) experiment has provided world-leading sensitivity for the direct detection of weakly interacting massive particle (WIMP) dark matter. The final exposure of our low-temperature germanium particle detectors at the Soudan Underground Laboratory yielded two candidate events, with an expected background of 0.9 ± 0.2 events. This is not statistically significant evidence for a WIMP signal. The combined CDMS II data place the strongest constraints on the WIMP-nucleon spin-independent scattering cross section for a wide range of WIMP masses and exclude new parameter space in inelastic dark matter models.Z. Ahmed, D.S. Akerib, S. Arrenberg, C.N. Bailey, D. Balakishiyeva, L. Baudis, D.A. Bauer, P.L. Brink, T. Bruch, R. Bunker, B. Cabrera, D.O. Caldwell, J. Cooley, P. Cushman, M. Daal, F. DeJongh, M.R. Dragowsky, L. Duong, S. Fallows, E. Figueroa-Feliciano, J. Filippini, M. Fritts, S.R. Golwala, D.R. Grant, J. Hall, R. Hennings-Yeomans, S.A. Hertel, D. Holmgren, L. Hsu, M.E. Huber, O. Kamaev, M. Kiveni, M. Kos, S.W. Leman, R. Mahapatra, V. Mandic, K.A. McCarthy, N. Mirabolfathi, D. Moore, H. Nelson, R.W. Ogburn, A. Phipps, M. Pyle, X. Qiu, E. Ramberg, W. Rau, A. Reisetter, 7 T. Saab, B. Sadoulet, 13 J. Sander, R.W. Schnee, D.N. Seitz, B. Serfass, K.M. Sundqvist, M. Tarka, P. Wikus, S. Yellin, 14 J. Yoo, B.A. Young, and J. Zhang (CDMS Collaboration) Division of Physics, Mathematics & Astronomy, California Institute of Technology, Pasadena, CA 91125, USA Department of Physics, Case Western Reserve University, Cleveland, OH 44106, USA Fermi National Accelerator Laboratory, Batavia, IL 60510, USA Lawrence Berkeley National Laboratory, Berkeley, CA 94720, USA Department of Physics, Massachusetts Institute of Technology, Cambridge, MA 02139, USA Department of Physics, Queen’s University, Kingston, ON, Canada, K7L 3N6 Department of Physics, St. Olaf College, Northfield, MN 55057 USA Department of Physics, Santa Clara University, Santa Clara, CA 95053, USA Department of Physics, Southern Methodist University, Dallas, TX 75275, USA Department of Physics, Stanford University, Stanford, CA 94305, USA Department of Physics, Syracuse University, Syracuse, NY 13244, USA Department of Physics, Texas A & M University, College Station, TX 77843, USA Department of Physics, University of California, Berkeley, CA 94720, USA Department of Physics, University of California, Santa Barbara, CA 93106, USA Departments of Phys. & Elec. Engr., University of Colorado Denver, Denver, CO 80217, USA Department of Physics, University of Florida, Gainesville, FL 32611, USA School of Physics & Astronomy, University of Minnesota, Minneapolis, MN 55455, USA Physics Institute, University of Zürich, Winterthurerstr. 190, CH-8057, Switzerland Division of Physics, Mathematics, and Astronomy, California Institute of Technology, Pasadena, CA 91125, USA


Physical Review Letters | 2006

Limits on Spin-Independent Interactions of Weakly Interacting Massive Particles with Nucleons from the Two-Tower Run of the Cryogenic Dark Matter Search

D. S. Akerib; M. J. Attisha; C. N. Bailey; L. Baudis; D. A. Bauer; P. L. Brink; P.P. Brusov; R. Bunker; B. Cabrera; David O. Caldwell; C.L. Chang; J. Cooley; M. B. Crisler; P. Cushman; M. Daal; R. Dixon; M.R. Dragowsky; D. Driscoll; L. Duong; R. Ferril; J. Filippini; R.J. Gaitskell; S. R. Golwala; D. R. Grant; R. Hennings-Yeomans; D. Holmgren; M. E. Huber; S. Kamat; S. Leclercq; A. Lu

We report new results from the Cryogenic Dark Matter Search (CDMS II) at the Soudan Underground Laboratory. Two towers, each consisting of six detectors, were operated for 74.5 live days, giving spectrum-weighted exposures of 34 kg-d for germanium and 12 kg-d for silicon targets after cuts, averaged over recoil energies 10-100 keV for a WIMP mass of 60 GeV. A blind analysis was conducted, incorporating improved techniques for rejecting surface events. No WIMP signal exceeding expected backgrounds was observed. When combined with our previous results from Soudan, the 90% C.L. upper limit on the spin-independent WIMP-nucleon cross section is 1.6 x 10^{-43} cm^2 from Ge, and 3 x 10^{-42} cm^2 from Si, for a WIMP mass of 60 GeV. The combined limit from Ge (Si) is a factor of 2.5 (10) lower than our previous results, and constrains predictions of supersymmetric models.


Physical Review D | 2006

Limits on spin-dependent WIMP-nucleon interactions from the Cryogenic Dark Matter Search

D. S. Akerib; M. S. Armel-Funkhouser; M. J. Attisha; C. N. Bailey; L. Baudis; D. A. Bauer; P. L. Brink; P.P. Brusov; R. Bunker; B. Cabrera; David O. Caldwell; C.L. Chang; J. Cooley; M. B. Crisler; P. Cushman; M. Daal; F. DeJongh; R. Dixon; M.R. Dragowsky; D. Driscoll; L. Duong; R. Ferril; J. Filippini; R.J. Gaitskell; S. R. Golwala; D. R. Grant; R. Hennings-Yeomans; D. Holmgren; M. E. Huber; S. Kamat

The Cryogenic Dark Matter Search (CDMS) is an experiment to detect weakly interacting massive particles (WIMPs) based on their interactions with Ge and Si nuclei. We report the results of an analysis of data from the first two runs of CDMS at the Soudan Underground Laboratory in terms of spin-dependent WIMP-nucleon interactions on 73Ge and 29Si. These data exclude new regions of spin-dependent WIMP-nucleon interaction parameter space, including regions relevant to spin-dependent interpretations of the annual modulation signal reported by the DAMA/NaI experiment.


Physical Review D | 2010

Analysis of the low-energy electron-recoil spectrum of the CDMS experiment

Z. Ahmed; D. S. Akerib; S. Arrenberg; C. N. Bailey; D. Balakishiyeva; L. Baudis; D. A. Bauer; J. Beaty; P. L. Brink; T. Bruch; R. Bunker; B. Cabrera; David O. Caldwell; J. Cooley; P. Cushman; F. DeJongh; M. R. Dragowsky; L. Duong; E. Figueroa-Feliciano; J. Filippini; M. Fritts; S. R. Golwala; D. R. Grant; J. Hall; R. Hennings-Yeomans; S. A. Hertel; D. Holmgren; L. Hsu; M. E. Huber; O. Kamaev

We report on the analysis of the low-energy electron-recoil spectrum from the CDMS II experiment using data with an exposure of 443.2 kg-days. The analysis provides details on the observed counting rate and possible background sources in the energy range of 2–8.5 keV. We find no significant excess of a peaked contribution to the total counting rate above the background model, and compare this observation to the recent DAMA results. In the framework of a conversion of a dark matter particle into electromagnetic energy, our 90% confidence level upper limit of 0.246  events/kg/day at 3.15 keV is lower than the total rate above background observed by DAMA. In absence of any specific particle physics model to provide the scaling in cross section between NaI and Ge, we assume a Z2 scaling. With this assumption the observed rate in DAMA remains higher than the upper limit in CDMS. Under the conservative assumption that the modulation amplitude is 6% of the total rate we obtain upper limits on the modulation amplitude a factor of ~2 lower than observed by DAMA, constraining some possible interpretations of this modulation.


To appear in the proceedings of | 2005

The SuperCDMS Experiment

R. W. Schnee; D. S. Akerib; M. J. Attisha; C. N. Bailey; L. Baudis; D. A. Bauer; P. L. Brink; Pavel Brusov; R. Bunker; B. Cabrera; David O. Caldwell; C.L. Chang; J. Cooley; M. B. Crisler; P. Cushman; Peter Denes; M. R. Dragowsky; L. Duong; J. Filippini; R.J. Gaitskell; S. R. Golwala; D. R. Grant; R. Hennings-Yeomans; D. Holmgren; M. E. Huber; K. D. Irwin; A. Lu; R. Mahapatra; P. Meunier; N. Mirabolfathi

Modest improvements in the level and/or discrimination of backgrounds are needed to keep backgrounds negligible during the three phases of SuperCDMS. By developing production designs that require only modest testing, detector production rates may be improved sufficiently to allow an exposure of 500 ton d within a reasonable time and budget. Overall, the improvement estimates described above are conservative. Previous development efforts have shown that some areas prove easier and provide larger factors while others prove more difficult. The conservative estimates together with the broad approach reduce the risk and give us confidence that we will succeed, providing the surest way to probe to WIMP-nucleon cross sections of 10{sup -46} cm{sup 2}.


THE THIRTEENTH INTERNATIONAL WORKSHOP ON LOW TEMPERATURE DETECTORS—LTD13 | 2009

SuperCDMS Detector Fabrication Advances

P. L. Brink; Z. Alimed; D. S. Akerib; C. N. Bailey; D. Balakishiyeva; D. A. Bauer; J. Beaty; R. Bunker; B. Cabrera; D. O. Caldweir; J. Cooley; E. Do Couto E Silva; P. Cushman; M. Daal; F. DeJongh; M. R. Dragowsky; L. Duong; E. Figueroa-Feliciano; J. P. Filippini; M. Fritts; S. R. Golwala; D. R. Grant; J. Half; R. Hennings-Yeomans; S. Herte; A. Hojem; D. Holmgren; L. Hsu; M. E. Huber; K. D. Irwin

For its dark matter search the SuperCDMS collaboration has developed new Ge detectors using the same athermal phonon sensors and ionization measurement technology of CDMS II but with larger mass, superior sensor performance and increased fabrication efficiency. The improvements in fabrication are described, a comparison of CDMS II and SuperCDMS detector production yield is reported, and future scalability addressed.


TOPICAL WORKSHOP ON LOW RADIOACTIVITY TECHNIQUES: LRT 2006 | 2007

Screening Surface Contamination with BetaCage

R. W. Schnee; Z. Ahmed; S. R. Golwala; D. R. Grant; K. Poinar

Existing screening facilities are insufficiently sensitive to meet the needs of rare‐event experiments for low‐energy electron emitters and alpha‐decaying isotopes. To provide such screening, the BetaCage will be a low‐background, atmospheric‐pressure neon drift chamber with unprecedented sensitivity to emitters of low‐energy electrons and alpha particles. Minimization of the detector mass and use of radiopure materials reduce background events. The chamber design accepts nearly all alphas and low‐energy electrons from the sample surface while allowing excellent rejection of residual backgrounds. A non‐radiopure prototype is under construction to test the design. The BetaCage will provide new infrastructure for rare‐event science as well as for a wider community that uses radioactive screening for areas including archaeology, biology, climatology, environmental science, geology, planetary science, and integrated‐circuit quality control.


THE THIRTEENTH INTERNATIONAL WORKSHOP ON LOW TEMPERATURE DETECTORS—LTD13 | 2009

Bulk and Surface Charge Collection: CDMS Detector Performance and Design Implications

C. N. Bailey; Z. Ahmed; D. S. Akerib; S. Arrenberg; D. Balakishiyeva; L. Baudis; D. A. Bauer; J. Beaty; R. l. Brink; T. Bmch; R. Bunker; B. Cabrera; David O. Caldwell; K. Clark; J. Cooley; R. Cushman; F. DeJongh; M. R. Dragowsky; L. Duong; E. Figueroa-Feliciano; J. Filippini; M. Fritts; S. R. Golwala; D. R. Grant; J. Hall; R. Hennings-Yeomans; S. A. Hertel; A. Hojem; D. Homgren; L. Hsu

The Cryogenic Dark Matter Search (CDMS) searches for Weakly Interacting Massive Particles (WIMPs) with cryogenic germanium particle detectors. These detectors discriminate between nuclear‐recoil candidate and electron‐recoil background events by collecting both phonon and ionization energy from interactions in the crystal. Incomplete ionization collection results in the largest background in the CDMS detectors as this causes electron‐recoil background interactions to appear as false candidate events. Two primary causes of incomplete ionization collection are suface and bulk charge trapping. Recent work has been focused on reducing surface trapping through the modification of fabrication methods for future detectors. Analyzing data taken with test devices shows that hydrogen passivation of the amorphous silicon blocking layer does not reduce the effects of surface trapping. Other data shows that the iron‐ion implantation used to lower the critical temperature of the tungsten transition‐edge sensors increases surface trapping, causing a degradation of the ionization collection. Using selective implantation on future detectors may improve ionization collection for events near the phonon side detector surface. Bulk trapping is minimized by neutralizing ionized lattice impurities. Detector investigations at testing facilities and at the experimental site in Soudan, MN have provided methods to optimize the neutralization process and monitor running conditions to maintain maximal ionization collection.


THE THIRTEENTH INTERNATIONAL WORKSHOP ON LOW TEMPERATURE DETECTORS—LTD13 | 2009

Characterization of SUPERCDMS 1-inch Ge detectors

Z. Ahmed; D. S. Akerib; C. N. Bailey; D. Balakishiyeva; D. A. Bauer; J. Beaty; P. L. Brink; R. Bunker; B. Cabrera; David O. Caldwell; K. Clark; J. Cooley; R. Cushman; F. DeJongh; M. R. Dragowsky; L. Duong; E. Figueroa-Feliciano; J. Filippini; M. Fritts; S. R. Golwala; D. R. Grant; J. Hall; R. Hennings-Yeomans; S. A. Hertel; D. Homgren; L. Hsu; M. E. Huber; O. Kamaev; M. Kiveni; M. Kos

The newly commissioned SuperCDMS Soudan experiment aims to search for WIMP dark matter with a sensitivity to cross sections of 5×10^(−45)cm^2 and larger (90% CL upper limit). This goal is facilitated by a new set of germanium detectors, 2.5 times more massive than the ones used in the CDMS-II experiment, and with a different athermal phonon sensor layout that eliminates radial degeneracy in position reconstruction of high radius events. We present characterization data on these detectors, as well as improved techniques for correcting position-dependent variations in pulse shape across the detector. These improvements provide surface-event discrimination sufficient for a reach of 5×10^(−45)cm^2.


arXiv: Astrophysics | 2007

CDMS, Supersymmetry and Extra Dimensions

D. S. Akerib; M. J. Attisha; C. N. Bailey; L. Baudis; D. A. Bauer; P. L. Brink; P.P. Brusov; R. Bunker; B. Cabrera; David O. Caldwell; C.L. Chang; J. Cooley; M. B. Crisler; P. Cushman; M. Daal; R. Dixon; M. R. Dragowsky; D. Driscoll; L. Duong; R. Ferril; J. Filippini; R.J. Gaitskell; S. R. Golwala; D. R. Grant; R. Hennings-Yeomans; D. Holmgren; M. E. Huber; S. Kamat; S. Leclercq; A. Lu

The CDMS experiment aims to directly detect massive, cold dark matter particles originating from the Milky Way halo. Charge and lattice excitations are detected after a particle scatters in a Ge or Si crystal kept at ∼30 mK, allowing to separate nuclear recoils from the dominating electromagnetic background. The operation of 12 detectors in the Soudan mine for 75 live days in 2004 delivered no evidence for a signal, yielding stringent limits on dark matter candidates from supersymmetry and universal extra dimensions. Thirty Ge and Si detectors are presently installed in the Soudan cryostat, and operating at base temperature. The run scheduled to start in 2006 is expected to yield a one order of magnitude increase in dark matter sensitivity.

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C. N. Bailey

Case Western Reserve University

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D. S. Akerib

Case Western Reserve University

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J. Cooley

Southern Methodist University

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P. L. Brink

SLAC National Accelerator Laboratory

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R. Hennings-Yeomans

Case Western Reserve University

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S. R. Golwala

California Institute of Technology

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L. Duong

University of Minnesota

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R. Bunker

University of California

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