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Low-Energy Physics Reach of Xenon Detectors for Nuclear-Recoil-Based Dark Matter and Neutrino Experiments

机译:基于核反冲的暗物质和中微子实验的氙探测器的低能量物理范围

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摘要

Dual-phase xenon detectors lead the search for keV-scale nuclear recoil signals expected from the scattering of weakly interacting massive particle (WIMP) dark matter, and can potentially be used to study the coherent nuclear scattering of MeV-scale neutrinos. New capabilities of such experiments can be enabled by extending their nuclear recoil searches down to the lowest measurable energy. The response of the liquid xenon target medium to nuclear recoils, however, is not well characterized below a few keV, leading to large uncertainties in projected sensitivities. In this work, we report a new measurement of ionization signals from nuclear recoils in liquid xenon down to the lowest energy reported to date. At 0.3 keV, we find that the average recoil produces approximately one ionization electron; this is the first measurement of nuclear recoil signals at the single-ionization-electron level, approaching the physical limit of liquid xenon ionization detectors. We discuss the implications of these measurements on the physics reach of xenon detectors for nuclear-recoil-based WIMP dark matter searches and the detection of coherent elastic neutrino-nucleus scattering.
机译:双相氙探测器引导了对弱相互作用的巨大粒子(WIMP)暗物质(WIMP)暗物质的散射预期的Kev尺度核反冲信号,并且可能用于研究MeV级中微子的相干核散射。通过延长其核反冲搜索,可以使这些实验的新功能进行降低到最低可测量的能量。然而,液体氙靶培养基对核反冲的响应并不具备低于几keV的特征,导致预计敏感性的大不确定性。在这项工作中,我们向迄今为止报告的最低能量报告了从液体氙气中的电离信号的新测量。在0.3 kev,我们发现平均反冲产生大约一个电离电子;这是在单电离 - 电子水平处的第一次测量核反冲信号,接近液体氙电离检测器的物理极限。我们讨论了这些测量对核心基于WIMP暗物质搜索的氙探测器的物理范围的影响以及相干弹性中性核散射的检测。

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  • 来源
    《Physical review letters》 |2019年第23期|231106.1-231106.6|共6页
  • 作者单位

    Stanford Univ Dept Phys 382 Via Pueblo Mall Stanford CA 94305 USA|Lawrence Livermore Natl Lab 7000 East Ave Livermore CA 94551 USA|Univ Calif Davis Dept Phys One Shields Ave Davis CA 95616 USA;

    Lawrence Livermore Natl Lab 7000 East Ave Livermore CA 94551 USA;

    Lawrence Livermore Natl Lab 7000 East Ave Livermore CA 94551 USA;

    Lawrence Livermore Natl Lab 7000 East Ave Livermore CA 94551 USA;

    Univ Calif Davis Dept Phys One Shields Ave Davis CA 95616 USA;

    Lawrence Livermore Natl Lab 7000 East Ave Livermore CA 94551 USA|Univ Chicago Div Phys Sci 5801 South Ellis Ave Chicago IL 60637 USA;

    Lawrence Livermore Natl Lab 7000 East Ave Livermore CA 94551 USA;

    Lawrence Livermore Natl Lab 7000 East Ave Livermore CA 94551 USA;

    Univ Calif Davis Dept Phys One Shields Ave Davis CA 95616 USA;

    Duke Univ Dept Phys Durham NC 27710 USA|Triangle Univ Nucl Labs Durham NC 27710 USA;

    Duke Univ Dept Phys Durham NC 27710 USA|Triangle Univ Nucl Labs Durham NC 27710 USA;

    Duke Univ Dept Phys Durham NC 27710 USA|Triangle Univ Nucl Labs Durham NC 27710 USA;

    Duke Univ Dept Phys Durham NC 27710 USA|Triangle Univ Nucl Labs Durham NC 27710 USA;

    Duke Univ Dept Phys Durham NC 27710 USA|Triangle Univ Nucl Labs Durham NC 27710 USA;

    Duke Univ Dept Phys Durham NC 27710 USA|Triangle Univ Nucl Labs Durham NC 27710 USA;

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