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首页> 外文期刊>Nuclear Instruments & Methods in Physics Research. Section A, Accelerators, Spectrometers, Detectors and Associated Equipment >Radiation damage in the diamond based beam condition monitors of the CMS experiment at the Large Hadron Collider (LHC) at CERN
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Radiation damage in the diamond based beam condition monitors of the CMS experiment at the Large Hadron Collider (LHC) at CERN

机译:CERN大型强子对撞机(LHC)CMS实验中基于金刚石的光束条件监测仪中的辐射损伤

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The Beam Condition Monitor (BCM) of the CMS detector at the LHC is a protection device similar to the LHC Beam Loss Monitor system. While the electronics used is the same, poly-crystalline Chemical Vapor Deposition (pCVD) diamonds are used instead of ionization chambers as the BCM sensor material. The main purpose of the system is the protection of the silicon Pixel and Strip tracking detectors by inducing a beam dump, if the beam losses are too high in the CMS detector. By comparing the detector current with the instantaneous luminosity, the BCM detector efficiency can be monitored. The number of radiation-induced defects in the diamond, reduces the charge collection distance, and hence lowers the signal. The number of these induced defects can be simulated using the FLUKA Monte Carlo simulation. The cross-section for creating defects increases with decreasing energies of the impinging particles. This explains, why diamond sensors mounted close to heavy calorimeters experience more radiation damage, because of the high number of low energy neutrons in these regions. The signal decrease was stronger than expected from the number of simulated defects. Here polarization from trapped charge carriers in the defects is a likely candidate for explaining the difference, as suggested by Transient Current Technique (TCT) measurements. A single-crystalline (sCVD) diamond sensor shows a faster relative signal decrease than a pCVD sensor mounted at the same location. This is expected, since the relative increase in the number of defects is larger in sCVD than in pCVD sensors.
机译:LHC CMS探测器的光束状态监视器(BCM)是类似于LHC光束损耗监视器系统的保护设备。尽管使用的电子设备相同,但多晶化学气相沉积(pCVD)金刚石代替BCM传感器材料用作电离室。该系统的主要目的是在CMS检测器中光束损失过高的情况下,通过引起光束倾泻来保护硅像素和条带跟踪检测器。通过将探测器电流与瞬时亮度进行比较,可以监控BCM探测器的效率。钻石中辐射引起的缺陷的数量减少了电荷收集距离,从而降低了信号。这些诱发缺陷的数量可以使用FLUKA蒙特卡洛模拟法进行模拟。产生缺陷的横截面随着撞击粒子能量的降低而增加。这解释了为什么安装在重热量计附近的钻石传感器会遭受更多的辐射损害,因为这些区域中存在大量的低能中子。从模拟缺陷的数量来看,信号下降要强于预期。正如瞬态电流技术(TCT)测量所建议的那样,缺陷中捕获的电荷载流子的极化可能是解释差异的一种可能。与安装在相同位置的pCVD传感器相比,单晶(sCVD)金刚石传感器显示出更快的相对信号衰减。这是可以预期的,因为与CVD相比,sCVD中缺陷数量的相对增加更大。

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