论文标题

富含氢的晶体和低TC TES探测器的轻暗物质检测

Light Dark Matter Detection with Hydrogen-rich Crystals and Low-Tc TES Detectors

论文作者

Wang, G., Chang, C. L., Lisovenko, M., Novosad, V., Yefremenko, V. G., Zhang, J.

论文摘要

直接检测亚gev暗物质(DM)颗粒的核散射有利于低Z核。具有单个质子的氢核为轻型暗物质颗粒提供了最佳的运动匹配。特征性的核后坐力能够通过在传统弱相互作用的大型粒子(WIMP)搜索中使用的较大核的数十个来推动。此外,氢不仅对于亚GEV DM的自旋非依赖性核散射是最佳的,而且对于自旋依赖性的核散射而言,大型参数空间仍然不受限制。在本文中,我们首先引入富含氢的晶体,其中包括水冰,乙炔,蒽,跨曲苯和萘。这些晶体在动力学激发下散发了两类信号。一类信号是红外光子,它来自分子的光学活性基本振动模式,并且处于相应的特征波长。另一个是声音子,以及腐烂到声音子的光学声子。然后,我们讨论低-TC过渡传感器(TES)检测器的技术状态和未来研究,该检测器测量具有理想敏感性的单一红外光子和一小部分声音子的通量。通过理论建模,可以选择富含氢的晶体进行优化的科学覆盖范围,开发超敏感的低TC TES检测器进行读数,并在富含氢的晶体中表征了光子和声子的传输特性,可以构建直接检测实验,以测量用于测量较大的未开发的光DM颗粒的大型未开发的参数空间。

Direct detection of nuclear scatterings of sub-GeV Dark Matter (DM) particles favors low-Z nuclei. Hydrogen nucleus, which has a single proton, provides the best kinematic match to a light dark matter particle. The characteristic nuclear recoil energy is boosted by a factor of a few tens from those for larger nuclei used in traditional Weakly Interacting Massive Particle (WIMP) searches. Furthermore, hydrogen is optimal not only for spin-independent nuclear scatterings of sub-GeV DM, but also for spin-dependent nuclear scatterings, where large parameter space remains unconstrained. In this paper, we first introduce hydrogen-rich crystals, which include water ice, acetylene, anthracene, trans-stilbene, and naphthalene. These crystals emit two classes of signals under kinetic excitations. One class of the signals is infrared photons, which are from optically active fundamental vibrational modes of molecules and are at corresponding characteristic wavelengths. The other is acoustic phonons, and optical phonons that decay into acoustic phonons. We then discuss the technical status and future researches of low-Tc Transition-Edge Sensor (TES) detectors, which measure single infrared photons and a small flux of acoustic phonons with desirable sensitivities. With theoretical modeling to select the hydrogen-rich crystals for the optimized science reach, development of ultra-sensitive low-Tc TES detectors for readout, and experimentally characterizing transport properties of photons and phonons in the selected hydrogen-rich crystals, a direct detection experiment can be built for measuring the large unexplored parameter space of light DM particles.

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