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首页> 外文期刊>Nuclear Instruments & Methods in Physics Research. Section A, Accelerators, Spectrometers, Detectors and Associated Equipment >Operational experience, improvements, and performance of the CDF Run II silicon vertex detector
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Operational experience, improvements, and performance of the CDF Run II silicon vertex detector

机译:CDF Run II硅顶点检测器的操作经验,改进和性能

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The Collider Detector at Fermilab (CDF) pursues a broad physics program at Fermilab's Tevatron collider. Between Run Ⅱ commissioning in early 2001 and the end of operations in September 2011, the Tevatron delivered 12 fb~(-1) of integrated luminosity of pp collisions at s~(1/2)= 1.96 TeV. The physics at CDF includes precise measurements of the masses of the top quark and W boson, measurement of CP violation and B_s mixing, and searches for Higgs bosons and new physics signatures, all of which require heavy flavor tagging with large charged particle tracking acceptance. To realize these goals, in 2001 CDF installed eight layers of silicon microstrip detectors around its interaction region. These detectors were designed for 2-5 years of operation, radiation doses up to 2 Mrad (0.02 Gy), and were expected to be replaced in 2004. The sensors were not replaced, and the Tevatron run was extended for several years beyond its design, exposing the sensors and electronics to much higher radiation doses than anticipated. In this paper we describe the operational challenges encountered over the past 10 years of running the CDF silicon detectors, the preventive measures undertaken, and the improvements made along the way to ensure their optimal performance for collecting high quality physics data. In addition, we describe the quantities and methods used to monitor radiation damage in the sensors for optimal performance and summarize the detector performance quantities important to CDFs physics program, including vertex resolution, heavy flavor tagging, and silicon vertex trigger performance.
机译:费米实验室(CDF)的对撞机探测器在费米实验室的Tevatron对撞机上追求广泛的物理程序。从2001年初的Ⅱ号试运行到2011年9月的运行结束之间,Tevatron在s〜(1/2)= 1.96 TeV时产生了12ppb pp碰撞的综合光度。 CDF的物理学包括对夸克和W玻色子质量的精确测量,CP违规和B_s混合的测量,以及搜索希格斯玻色子和新的物理特征,所有这些都需要带有大量带电粒子跟踪接受能力的重口味标签。为了实现这些目标,CDF于2001年在其相互作用区域周围安装了八层硅微带探测器。这些探测器的设计工作时间为2-5年,辐射剂量最高为2 Mrad(0.02 Gy),预计在2004年将被更换。传感器没有被更换,Tevatron的运行超出了其设计的几年,使传感器和电子设备暴露于比预期高得多的辐射剂量。在本文中,我们描述了运行CDF硅探测器在过去10年中遇到的运营挑战,采取的预防措施以及在确保其最佳性能以收集高质量物理数据的过程中所做的改进。此外,我们描述了用于监测传感器中辐射损伤以获得最佳性能的数量和方法,并总结了对CDF物理程序很重要的探测器性能数量,包括顶点分辨率,浓味标记和硅顶点触发性能。

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