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首页> 外文期刊>Nuclear Instruments & Methods in Physics Research. Section A, Accelerators, Spectrometers, Detectors and Associated Equipment >Development of monolithic sensors for high energy physics in commercial CMOS technologies
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Development of monolithic sensors for high energy physics in commercial CMOS technologies

机译:商业CMOS技术中用于高能物理的单片传感器的开发

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Hybrid pixel detectors with readout and sensor in different silicon chips are in overwhelming majority in today's high energy physics experiments, but monolithic active pixel sensors (MAPS) have received significant attention because they offer easier detector assembly, lower cost, and other advantages like lower material and higher granularity. MAPS now move towards commercial CMOS technologies, which offer significant radiation tolerance and substrates compatible with particle detection and combine circuit performance and density with volume production capability at reasonable cost. MAPS in commercial CMOS technologies were used for the first time in the STAR experiment, adopted for the ALICE experiment, and are being considered for the most aggressive applications, like the ATLAS HL-LHC upgrade and future colliders like the FCC and CLIC. Significant improvements are made in every iteration with challenges in sensor and frontend design, architecture, speed, timing, radiation tolerance and system issues. This paper tries to give an overview. Some considerations on digital power consumption versus hit rate and clock distribution over the pixel matrix are added as well.
机译:在当今的高能物理实验中,具有读数和传感器在不同硅芯片中的混合像素检测器占绝大多数,但是单片式有源像素传感器(MAPS)受到了广泛关注,因为它们提供了更易于安装的检测器,更低的成本以及其他优点,例如更低的材料和更高的粒度。 MAPS现在朝着商用CMOS技术迈进,该技术提供了显着的耐辐射性以及与颗粒检测兼容的基板,并以合理的成本将电路性能和密度与批量生产能力相结合。商业CMOS技术中的MAPS首次在STAR实验中使用,并被ALICE实验采用,并被考虑用于最激进的应用,例如ATLAS HL-LHC升级以及FCC和CLIC等未来的对撞机。在每次迭代中都进行了重大改进,其中涉及传感器和前端设计,架构,速度,时序,辐射容忍度和系统问题方面的挑战。本文试图给出一个概述。还增加了一些关于数字功耗,命中率和像素矩阵上的时钟分配的注意事项。

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