{"title":"Precision Timing with the CMS MIP Timing Detector","authors":"P. M. R. Arbol","doi":"10.22323/1.367.0100","DOIUrl":null,"url":null,"abstract":"The Compact Muon Solenoid detector at the CERN Large Hadron Collider is undergoing an extensive Phase II upgrade program to prepare for the challenging conditions of the High-Luminosity LHC. In particular, a new timing layer with hermetic coverage up to a pseudo-rapidity of |$\\eta$|$=$3 will measure minimum ionizing particles with a time resolution of 30 ps. This MIP Timing Detector will consist of a central barrel region based on LYSO:Ce crystals read out with SiPMs and two end-caps instrumented with radiation-tolerant Low Gain Avalanche Detectors. The precision time information from the MTD will reduce the effects of the high levels of pile-up expected at the HL-LHC and will bring new and unique capabilities to the CMS detector. The time information assigned to each track will enable the use of 4D reconstruction algorithms and will further discriminate interaction vertices within the same bunch crossing to recover the track purity of vertices in current LHC conditions. For instance, in the analysis of di-Higgs boson production, a timing resolution of 30-40 ps is expected to improve the effective luminosity by about 25\\% through gains in b-tagging and isolation efficiency. We present motivations for precision timing at the HL-LHC and overview the MTD design, while also highlighting specific physics studies benefiting from the improved timing information.","PeriodicalId":163721,"journal":{"name":"Proceedings of XXIX International Symposium on Lepton Photon Interactions at High Energies — PoS(LeptonPhoton2019)","volume":"22 1","pages":"0"},"PeriodicalIF":0.0000,"publicationDate":"2019-11-26","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"Proceedings of XXIX International Symposium on Lepton Photon Interactions at High Energies — PoS(LeptonPhoton2019)","FirstCategoryId":"1085","ListUrlMain":"https://doi.org/10.22323/1.367.0100","RegionNum":0,"RegionCategory":null,"ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"","JCRName":"","Score":null,"Total":0}
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Abstract

The Compact Muon Solenoid detector at the CERN Large Hadron Collider is undergoing an extensive Phase II upgrade program to prepare for the challenging conditions of the High-Luminosity LHC. In particular, a new timing layer with hermetic coverage up to a pseudo-rapidity of |$\eta$|$=$3 will measure minimum ionizing particles with a time resolution of 30 ps. This MIP Timing Detector will consist of a central barrel region based on LYSO:Ce crystals read out with SiPMs and two end-caps instrumented with radiation-tolerant Low Gain Avalanche Detectors. The precision time information from the MTD will reduce the effects of the high levels of pile-up expected at the HL-LHC and will bring new and unique capabilities to the CMS detector. The time information assigned to each track will enable the use of 4D reconstruction algorithms and will further discriminate interaction vertices within the same bunch crossing to recover the track purity of vertices in current LHC conditions. For instance, in the analysis of di-Higgs boson production, a timing resolution of 30-40 ps is expected to improve the effective luminosity by about 25\% through gains in b-tagging and isolation efficiency. We present motivations for precision timing at the HL-LHC and overview the MTD design, while also highlighting specific physics studies benefiting from the improved timing information.
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精确定时与CMS MIP定时检测器
欧洲核子研究中心(CERN)大型强子对撞机(LHC)的紧凑型μ子螺线管探测器正在进行第二阶段升级计划,为高亮度LHC的挑战性条件做准备。特别是,一个新的定时层,其密封覆盖可达伪快度|$\eta$|$=$3,将以30 ps的时间分辨率测量最小电离粒子。该MIP定时探测器将由一个基于LYSO:Ce晶体的中心桶区组成,该晶体由SiPMs读出,两个端帽配有耐辐射低增益雪崩探测器。来自MTD的精确时间信息将减少HL-LHC预期的高水平堆积的影响,并将为CMS探测器带来新的和独特的能力。分配给每个轨迹的时间信息将允许使用4D重建算法,并将进一步区分同一束交叉内的相互作用顶点,以恢复当前LHC条件下顶点的轨迹纯度。例如,在对双希格斯玻色子产生的分析中,30-40 ps的时间分辨率有望通过b标记和隔离效率的提高,将有效光度提高约25%。我们介绍了HL-LHC精确定时的动机,概述了MTD的设计,同时也强调了从改进的定时信息中受益的特定物理研究。
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