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首页> 外文期刊>Nuclear Instruments & Methods in Physics Research. Section A, Accelerators, Spectrometers, Detectors and Associated Equipment >Charged particle detection performances of CMOS pixel sensors produced in a 0.18 μm process with a high resistivity epitaxial layer
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Charged particle detection performances of CMOS pixel sensors produced in a 0.18 μm process with a high resistivity epitaxial layer

机译:具有高电阻率外延层的以0.18μm工艺生产的CMOS像素传感器的带电粒子检测性能

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摘要

The apparatus of the ALICE experiment at CERN will be upgraded in 2017/18 during the second long shutdown of the LHC (LS2). A major motivation for this upgrade is to extend the physics reach for charmed and beauty particles down to low transverse momenta. This requires a substantial improvement of the spatial resolution and the data rate capability of the ALICE Inner Tracking System (ITS). To achieve this goal, the new ITS will be equipped with 50 μm thin CMOS Pixel Sensors (CPS) covering either the three innermost layers or all the 7 layers of the detector. The CPS being developed for the ITS upgrade at IPHC (Strasbourg) is derived from the MIMOSA 28 sensor realised for the STAR-PXL at RH1C in a 0.35 μm CMOS process. In order to satisfy the ITS upgrade requirements in terms of readout speed and radiation tolerance, a CMOS process with a reduced feature size and a high resistivity epitaxial layer should be exploited. In this respect, the charged particle detection performance and radiation hardness of the Towerjazz 0.18 μm CMOS process were studied with the help of the first prototype chip MIMOSA 32. The beam tests peiformed with negative pions of 120 GeV/c at the CERN-SPS allowed to measure a signal-to-noise ratio (SNR) for the non-irradiated chip in the range between 22 and 32 depending on the pixel design. The chip irradiated with the combined dose of 1 MRad and 10~(13) n_(eq)/cm~2 was observed to yield an SNR ranging between 11 and 23 for coolant temperatures varying from 15 C to 30 C. These SNR values were measured to result in particle detection efficiencies above 99.5% and 98% before and after irradiation, respectively. These satisfactory results allow to validate the Towerjazz 0.18 μm CMOS process for the ALICE ITS upgrade.
机译:欧洲核子研究中心(CERN)的ALICE实验设备将于2017/18年度LHC(LS2)的第二次长时间关闭期间进行升级。进行此升级的主要动机是将魅力和美感粒子的物理范围扩展到较低的横向动量。这就需要大幅提高ALICE内部跟踪系统(ITS)的空间分辨率和数据速率能力。为了实现这一目标,新型ITS将配备50μm薄的CMOS像素传感器(CPS),覆盖传感器的三个最内层或全部7层。为IPHC(斯特拉斯堡)的ITS升级而开发的CPS源自MIMOSA 28传感器,该传感器针对RH1C的STAR-PXL以0.35μmCMOS工艺实现。为了满足在读出速度和辐射耐受性方面的ITS升级要求,应当利用具有减小的特征尺寸和高电阻率的外延层的CMOS工艺。在这方面,借助第一个原型芯片MIMOSA 32研究了Towerjazz 0.18μmCMOS工艺的带电粒子检测性能和辐射硬度。允许在CERN-SPS上用120 GeV / c的负离子进行束束测试根据像素设计,测量非辐射芯片的信噪比(SNR)在22到32之间。对于冷却剂温度从15 C到30 C的变化,观察到以1 MRad和10〜(13)n_(eq)/ cm〜2的组合剂量照射的芯片产生的SNR在11到23之间。这些SNR值为在辐射之前和之后,分别测量得到的颗粒检测效率分别高于99.5%和98%。这些令人满意的结果可以验证用于ALICE ITS升级的Towerjazz 0.18μmCMOS工艺。

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