Feasibility study of TPC tracker detector for the circular collider

Zhiyang Yuan, H. Qi, Haiyun Wang, Ling Liu, Yuan-bo Chen, Q. Ouyang, J. Cai, Yulan Li State Key Laboratory of Particle Detection, Electronics, I. Physics, D. Physics, Tsinghua University
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引用次数: 2

Abstract

The discovery of a SM Higgs boson at the LHC brought about great opportunity to investigate the feasibility of a Circular Electron Positron Collider (CEPC) operating at center-of-mass energy of $\sim 240$ GeV, as a Higgs factory, with designed luminosity of about $2\times 10^{34}cm^{-2}s^{-1}$. The CEPC provides a much cleaner collision environment than the LHC, it is ideally suited for studying the properties of Higgs boson with greater precision. Another advantage of the CEPC over the LHC is that the Higgs boson can be detected through the recoil mass method by only reconstructing Z boson decay without examining the Higgs decays. In Concept Design Report(CDR), the circumference of CEPC is 100km, with two interaction points available for exploring different detector design scenarios and technologies. The baseline design of CEPC detector is an ILD-like concept, with a superconducting solenoid of 3.0 Tesla surrounding the inner silicon detector, TPC tracker detector and the calorimetry system. Time Projection Chambers (TPCs) have been extensively studied and used in many fields, especially in particle physics experiments, including STAR and ALICE. The TPC detector will operate in continuous mode on the circular machine. To fulfill the physics goals of the future circular collider and meet Higgs/$Z$ run, a TPC with excellent performance is required. We have proposed and investigated the ions controlling performance of a novel configuration detector module. The aim of this study is to suppress ion backflow ($IBF$) continually. In this paper, some update results of the feasibility and limitation on TPC detector technology R$\&$D will be given using the hybrid gaseous detector module.
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环形对撞机TPC跟踪探测器的可行性研究
在大型强子对撞机上发现了一个SM希格斯玻色子,这为研究在质量中心能量为240 GeV的圆形电子正电子对撞机(CEPC)作为希格斯工厂的可行性提供了一个很好的机会,设计的光度约为2\乘以10^{34}cm^{-2}s^{-1}$。CEPC提供了一个比大型强子对撞机干净得多的碰撞环境,它非常适合以更高的精度研究希格斯玻色子的性质。CEPC相对于大型强子对撞机的另一个优势是,可以通过反冲质量法检测希格斯玻色子,只需重建Z玻色子衰变,而无需检测希格斯玻色子衰变。在概念设计报告(CDR)中,CEPC的周长为100公里,有两个交互点可供探索不同的探测器设计方案和技术。CEPC探测器的基线设计是一个类似ild的概念,用3.0特斯拉的超导螺线管环绕内部硅探测器、TPC跟踪探测器和量热系统。时间投影室(TPCs)在许多领域,特别是粒子物理实验中得到了广泛的研究和应用,包括STAR和ALICE。TPC检测器将在圆形机器上以连续模式运行。为了实现未来圆形对撞机的物理目标并满足希格斯/$Z$运行,需要性能优异的TPC。我们提出并研究了一种新型结构检测器模块的离子控制性能。本研究旨在持续抑制离子回流(IBF)。本文将利用混合气体探测器模块给出TPC探测器技术R$\&$D的可行性和局限性的一些更新结果。
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