2018
DOI: 10.1103/physrevd.97.022002
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Low-mass dark matter search with CDMSlite

Abstract: The SuperCDMS experiment is designed to directly detect weakly interacting massive particles (WIMPs) that may constitute the dark matter in our Galaxy. During its operation at the Soudan Underground Laboratory, germanium detectors were run in the CDMSlite mode to gather data sets with sensitivity specifically for WIMPs with masses <10 GeV=c 2 . In this mode, a higher detector-bias voltage is applied to amplify the phonon signals produced by drifting charges. This paper presents studies of the experimental nois… Show more

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Cited by 220 publications
(275 citation statements)
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“…For the mass range 1 GeV m π 10 GeV that we will be interested in, relevant constraints arise from a number of different direct detection experiments, namely CRESST-III [43], CDMSLite [44], DarkSide-50 [45], PICO-60 [46], PandaX [47] and XENON1T [48]. Rather than simply considering each experimental result separately, we use DDCalc 2.0 [49] to perform a statistical combination of all experimental results.…”
Section: Constraints From Direct Detection Experimentsmentioning
confidence: 99%
“…For the mass range 1 GeV m π 10 GeV that we will be interested in, relevant constraints arise from a number of different direct detection experiments, namely CRESST-III [43], CDMSLite [44], DarkSide-50 [45], PICO-60 [46], PandaX [47] and XENON1T [48]. Rather than simply considering each experimental result separately, we use DDCalc 2.0 [49] to perform a statistical combination of all experimental results.…”
Section: Constraints From Direct Detection Experimentsmentioning
confidence: 99%
“…Although dark matter (DM) is undoubtedly present in our universe, its detection via non-gravitational effects has eluded us [1][2][3][4][5][6][7][8][9][10][11][12][13][14][15][16]. One well-motivated hypothesis regarding DM is that, in the early universe, it was in thermal equilibrium with the standard model (SM) plasma before its interactions froze out, resulting in a relic abundance that persists today [17].…”
Section: Introductionmentioning
confidence: 99%
“…Since the dipole approximation is valid when qr e 1, where r e ∼ 1/(αm e ) in silicon, we anchor our form-factors at q 0 = 0.5αm e and take the average value of f ion in a neighborhood around q 0 . The [52], CRESST III [53], organic liquid scintillator [54], DarkSide-50 [55], CDEX [6], XENON1T [56,57], and a recast of XENON1T data for cosmic-ray up-scatter [44]. In the bottom panel, the gray-shaded region corresponds to constraints from LUX [4] and Panda-X [58].…”
mentioning
confidence: 99%