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Review of dark matter direct detection experiments

机译:暗物质直接检测实验综述

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Matter, as we know it, makes up less than 5% of the Universe. Various astrophysical observations have confirmed that one quarter of the Universe and most of the matter content in the Universe is made up of dark matter. The nature of dark matter is yet to be discovered and is one of the biggest questions in physics. Particle physics combined with astrophysical measurements of the abundance gives rise to a dark matter candidate called weakly interacting massive particle (WIMP). The low density of WIMPs in the galaxies and the extremely weak nature of the interaction with ordinary matter make detection of the WIMP an extraordinarily challenging task, with abundant fakes from various radioactive and cosmogenic backgrounds with much stronger electromagnetic interaction. The extremely weak nature of the WIMP interaction dictates detectors that have extremely low naturally occurring radioactive background, a large active volume (mass) of sensitive detector material to maximize statistics, a highly efficient detector-based rejection mechanism for the dominant electromagnetic background and sophisticated analysis techniques to reject any residual background. This paper reviews currently available major technologies being pursued by various collaborations, with special emphasis on the cryogenic Ge detector technology used by the Cryogenic Dark Matter Search Collaboration (CDMS).
机译:据我们所知,物质仅占宇宙的不到5%。各种天体物理学观测已经证实,宇宙的四分之一和宇宙中大部分物质含量都是由暗物质组成的。暗物质的性质尚未发现,是物理学中最大的问题之一。粒子物理学与丰度的天体物理测量相结合,产生了一种称为弱相互作用大粒子(WIMP)的暗物质候选物。星系中WIMP的低密度以及与普通物质相互作用的极弱性质,使得WIMP的检测成为一项极具挑战性的任务,来自各种放射性和宇宙背景的大量假货具有更强的电磁相互作用。 WIMP相互作用的极弱特性决定了具有极低自然放射性背景的检测器,较大的有效检测体积(质量)的敏感检测器材料可最大化统计数据,高效的基于检测器的主要电磁背景拒绝机制和复杂的分析拒绝任何残留背景的技术。本文回顾了各种合作正在寻求的当前可用主要技术,其中特别强调了低温暗物质搜索合作组织(CDMS)使用的低温Ge探测器技术。

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