论文标题
通过光学读数鉴定气体TPC中低能核后坐力
Identification of low energy nuclear recoils in a gas TPC with optical readout
论文作者
论文摘要
只要排除了众多高质量巨人的暗物质候选者,就可以寻找能够检测和重建凯夫能量范围内检测和重建核后坐力事件的新技术就变得越来越重要。具有光学读数的气态时间投影室(TPC)是非常有前途的候选人,将TPC技术提供的完整事件信息结合到了上一代Scosic Light传感器的高灵敏度和颗粒状。在Laboratori nazionali di frascati测试了用气体电子乘数(GEM)获得的具有扩增的TPC。使用放射源的光子和中子用于在[1-100] KEV范围内诱导核和电子的后退。在大气压下使用He-CF4(60/40)气体混合物,并通过高位置分辨率和低噪声科学的CMOS摄像头和光电倍增器获得了宝石通道中繁殖过程中产生的光。此处介绍了基于高级聚类技术的多阶段模式识别算法。许多簇状形状可观察物用于识别由中子诱导的核后坐力,该中子源自针对X射线55FE光电子的AMBE源。达到96%55FE光电子抑制的效率为18%以检测能量约为6 keV的核后坐力。这使得这种光学读数气体TPC成为将来对超稀有事件进行调查的非常有前途的候选人,作为定向直接暗物质搜索。
The search for a novel technology able to detect and reconstruct nuclear recoil events in the keV energy range has become more and more important as long as vast regions of high mass WIMP-like Dark Matter candidate have been excluded. Gaseous Time Projection Chambers (TPC) with optical readout are very promising candidate combining the complete event information provided by the TPC technique to the high sensitivity and granularity of last generation scientific light sensors. A TPC with an amplification at the anode obtained with Gas Electron Multipliers (GEM) was tested at the Laboratori Nazionali di Frascati. Photons and neutrons from radioactive sources were employed to induce recoiling nuclei and electrons with kinetic energy in the range [1-100] keV. A He-CF4 (60/40) gas mixture was used at atmospheric pressure and the light produced during the multiplication in the GEM channels was acquired by a high position resolution and low noise scientific CMOS camera and a photomultiplier. A multi-stage pattern recognition algorithm based on an advanced clustering technique is presented here. A number of cluster shape observables are used to identify nuclear recoils induced by neutrons originated from a AmBe source against X-ray 55Fe photo-electrons. An efficiency of 18% to detect nuclear recoils with an energy of about 6 keV is reached obtaining at the same time a 96% 55Fe photo-electrons suppression. This makes this optically readout gas TPC a very promising candidate for future investigations of ultra-rare events as directional direct Dark Matter searches.