CMS高粒度量热计辐照硅衬垫探测器的实验与仿真研究

T. Peltola
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引用次数: 1

摘要

预计将LHC升级到高亮度阶段(HL-LHC),将最大限度地发挥该设施的物理潜力。此次升级预计将瞬时亮度提高5倍,并在运行10年后提供3000 fb−1的综合亮度。由于辐射和堆积的相应增加,CMS端帽中的电磁量热仪将承受1.5 MGy的最大综合剂量和1016 neqcm−2以上的中子影响,需要替换它们以进行HL-LHC操作。CMS合作决定用高粒度量热计(HGCAL)取代现有的端盖电磁和强子量热计,该量热计将提供关于HL-LHC非常高堆积中的电磁和强子阵雨的前所未有的信息。为了在HGCAL中使用Si探测器,并应对强辐射环境带来的挑战,已经启动了一项广泛的研发计划,包括各种类型,尺寸和厚度的原型传感器的生产,辐射前后的认证达到预期水平,以及随之而来的模拟研究。正在进行的研究包括测量电流电压和电容电压特性,以及在HL-LHC上辐照到HGCAL预期水平的传感器的预测电荷收集效率。介绍了中子辐照硅探测器的研究现状和初步性能结果,并与数值模拟结果进行了比较。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Experimental and simulation study of irradiated silicon pad detectors for the CMS High Granularity Calorimeter
The foreseen upgrade of the LHC to its high luminosity phase (HL-LHC), will maximize the physics potential of the facility. The upgrade is expected to increase the instantaneous luminosity by a factor of 5 and deliver an integrated luminosity of 3000 fb−1 after 10 years of operation. As a result of the corresponding increase in radiation and pileup, the electromagnetic calorimetry in the CMS endcaps will sustain maximum integrated doses of 1.5 MGy and neutron fluences above 1016 neqcm−2, necessitating their replacement for HL-LHC operation.The CMS collaboration has decided to replace the existing endcap electromagnetic and hadronic calorimeters by a High Granularity Calorimeter (HGCAL) that will provide unprecedented information on electromagnetic and hadronic showers in the very high pileup of the HL-LHC. In order to employ Si detectors in HGCAL and to address the challenges brought by the intense radiation environment, an extensive R&D program has been initiated, comprising production of prototype sensors of various types, sizes and thicknesses, their qualification before and after irradiation to the expected levels, and accompanying simulation studies.The ongoing investigation presented here includes measurements of current-voltage and capacitance-voltage characteristics, along with predicted charge collection efficiences of the sensors irradiated to levels expected for the HGCAL at HL-LHC. The status of the study and the first results of the performance of neutron irradiated Si detectors, as well as their comparison with numerical simulations, are presented.
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