论文标题

使用固态量子传感对暗物质的定向检测

Directional Detection of Dark Matter Using Solid-State Quantum Sensing

论文作者

Ebadi, Reza, Marshall, Mason C., Phillips, David F., Cremer, Johannes, Zhou, Tao, Titze, Michael, Kehayias, Pauli, Ziabari, Maziar Saleh, Delegan, Nazar, Rajendran, Surjeet, Sushkov, Alexander O., Heremans, F. Joseph, Bielejec, Edward S., Holt, Martin V., Walsworth, Ronald L.

论文摘要

下一代暗物质(DM)检测器寻找弱相互作用的巨大颗粒(WIMP)将对来自太阳中微子的相干散射敏感,要求有效的背景信号歧视工具。尽管中微子的背景不可还原,但定向检测器提高了对wIMP DM的敏感性。宽带gap半导体为高密度目标材料中的方向检测提供了途径。这种类型的检测器以混合模式运行。使用实时电荷,声子或光子收集检测到WIMP或中微子诱导的核后坐力。但是,定向信号被刻在晶格结构中的耐用亚微米损伤轨道上。从点缺陷量子传感到X射线显微镜,可以通过多种原子物理技术读取该定向信号。在本白皮书中,我们介绍了探测器原理,并回顾了核后坐力轨道定向读数所需的实验技术的状态。具体而言,我们将重点放在钻石作为目标材料上。它既是新兴量子技术的领先平台,也是下一代半导体电子产品的有希望的组成部分。基于未来十年中钻石方向读数的发展和演示,未来的WIMP探测器将利用或激励多个学科的进步迈向精确的暗物质和中微子物理学。

Next-generation dark matter (DM) detectors searching for weakly interacting massive particles (WIMPs) will be sensitive to coherent scattering from solar neutrinos, demanding an efficient background-signal discrimination tool. Directional detectors improve sensitivity to WIMP DM despite the irreducible neutrino background. Wide-bandgap semiconductors offer a path to directional detection in a high-density target material. A detector of this type operates in a hybrid mode. The WIMP or neutrino-induced nuclear recoil is detected using real-time charge, phonon, or photon collection. The directional signal, however, is imprinted as a durable sub-micron damage track in the lattice structure. This directional signal can be read out by a variety of atomic physics techniques, from point defect quantum sensing to x-ray microscopy. In this white paper, we present the detector principle and review the status of the experimental techniques required for directional readout of nuclear recoil tracks. Specifically, we focus on diamond as a target material; it is both a leading platform for emerging quantum technologies and a promising component of next-generation semiconductor electronics. Based on the development and demonstration of directional readout in diamond over the next decade, a future WIMP detector will leverage or motivate advances in multiple disciplines towards precision dark matter and neutrino physics.

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