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K. T. Lesko

Researcher at Lawrence Berkeley National Laboratory

Publications -  176
Citations -  20081

K. T. Lesko is an academic researcher from Lawrence Berkeley National Laboratory. The author has contributed to research in topics: Neutrino & Sudbury Neutrino Observatory. The author has an hindex of 44, co-authored 168 publications receiving 18517 citations. Previous affiliations of K. T. Lesko include University of California, Berkeley.

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Journal ArticleDOI

Direct evidence for neutrino flavor transformation from neutral current interactions in the Sudbury Neutrino Observatory

Q. R. Ahmad, +205 more
TL;DR: Observations of neutral-current nu interactions on deuterium in the Sudbury Neutrino Observatory are reported, providing strong evidence for solar nu(e) flavor transformation.
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First results from KamLAND: evidence for reactor antineutrino disappearance.

K. Eguchi, +106 more
TL;DR: In the context of two-flavor neutrino oscillations with CPT invariance, all solutions to the solar neutrinos problem except for the "large mixing angle" region are excluded.
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First results from the LUX dark matter experiment at the Sanford Underground Research Facility

D. S. Akerib, +101 more
TL;DR: The first WIMP search data set is reported, taken during the period from April to August 2013, presenting the analysis of 85.3 live days of data, finding that the LUX data are in disagreement with low-mass W IMP signal interpretations of the results from several recent direct detection experiments.
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Results from a Search for Dark Matter in the Complete LUX Exposure

D. S. Akerib, +100 more
TL;DR: This search yields no evidence of WIMP nuclear recoils and constraints on spin-independent weakly interacting massive particle (WIMP)-nucleon scattering using a 3.35×10^{4} kg day exposure of the Large Underground Xenon experiment are reported.
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Measurement of the rate of ve + d → p + p + e- interactions produced by 8B solar neutrinos at the sudbury neutrino observatory

Q. R. Ahmad, +205 more
TL;DR: In this paper, the total flux of 8B neutrinos was determined to be (5.44±0.99)×106 cm−2 s−1, in close agreement with the predictions of solar models.