Investigation and Mitigation of Crosstalk in the Prototype ME0 GEM Detector for the Phase-2 Muon System Upgrade of the CMS Experiment: On behalf of the CMS Muon Group

S. Butalla, M. Hohlmann
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引用次数: 5

Abstract

The LHe is currently undergoing a high luminosity upgrade, which is set to increase the instantaneous luminosity by at least a factor of five. This luminosity increase will result in a higher muon flux rate in the forward region and overwhelm the current trigger system of the CMS experiment. The MEO, a gas electron multiplier detector, is proposed for the Phase-2 Muon System Upgrade for the CMS experiment to help increase the muon acceptance and to control the Level 1 muon trigger rate. A recent design iteration of this detector features GEM foils that are segmented on both sides, which helps to lower the probability of high voltage discharges. However, during preliminary testing of the chamber, substantial crosstalk between readout sectors was observed. Here, we investigate, characterize, and quantify the crosstalk present in the detector, and also estimate the performance of the chamber as a result of this crosstalk via simulation results of the detector dead time, efficiency loss, and frontend electronics response. The results of crosstalk via signals produced by applying a square voltage pulse directly on the readout strips of the detector with a signal generator are summarized. We also present the efficacy of mitigation strategies including bypass capacitors and increasing the area of the HV segments on the third GEM foil in the detector. We find that the crosstalk is a result of capacitive coupling between the readout strips on the readout board and between the readout strips and the bottom of the third GEM foil. Our results show that the crosstalk generally follows a pattern where the largest magnitude of crosstalk is within the same azimuthal readout segment in the detector, and in the next-nearest horizontal segments in eta. Generally, the bypass capacitors and increased area of the HV segments successfully lower the crosstalk in the sectors where they are located; on average, we observe a maximum decrease of crosstalk in sectors previously experiencing crosstalk from (1.66±0.03)% to (1.11±0.02)% with all HV segments connected in parallel on the bottom of the third GEM foil, with the addition of an HV low-pass filter connected to this electrode, and an HV divider. However, with these mitigation strategies, we also observe slightly increased crosstalk (≨ 0.4%) in readout sectors farther away.
CMS实验第二阶段μ子系统升级中ME0 GEM探测器原型串扰的研究与缓解:代表CMS μ子组
LHe目前正在进行高亮度升级,这将使瞬时亮度增加至少五倍。这种光度的增加将导致前向区的μ子通量率增大,使CMS实验的电流触发系统不堪重负。提出了一种气体电子倍增探测器MEO,用于CMS实验的第二阶段μ子系统升级,以帮助提高μ子接受度并控制1级μ子触发率。该检测器的最新设计迭代具有两面分段的GEM箔,这有助于降低高压放电的概率。然而,在室的初步测试期间,观察到读数扇区之间存在大量串扰。在这里,我们研究,表征和量化检测器中存在的串扰,并通过检测器死区时间,效率损失和前端电子响应的模拟结果估计该串扰导致的腔室性能。总结了用信号发生器在检波器读出带上直接施加方形电压脉冲所产生的信号串扰的结果。我们还介绍了缓解策略的有效性,包括旁路电容器和增加探测器中第三个GEM箔上的HV段的面积。我们发现串扰是读出板上读出带之间以及读出带与第三片GEM箔底部之间电容耦合的结果。我们的结果表明,串扰通常遵循这样一种模式,即最大的串扰在探测器的相同方位读出段内,以及在eta中最近的水平段内。一般来说,旁路电容器和增加高压段的面积成功地降低了它们所在扇区的串扰;平均而言,我们观察到先前经历串扰的扇区的串扰最大减少,从(1.66±0.03)%降至(1.11±0.02)%,所有HV段平行连接在第三个GEM箔的底部,并在该电极上添加一个HV低通滤波器和一个HV分压器。然而,通过这些缓解策略,我们还观察到更远的读出扇区的串扰略有增加(≨0.4%)。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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