CMOS 技术在 ALICE 实验中的应用

Domenico Colella
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引用次数: 0

摘要

单片有源像素传感器(MAPS)利用CMOS技术,将传感部分和前端电子器件结合在同一硅层中。得益于这一商业工艺的进步,MAPS在过去十年中在集成度、辐射硬度和读出速度方面取得了显著进步。MAPS 在高能物理领域的首次应用是 PXL 探测器,该探测器于 2014 年安装在 BNL 的 STAR 实验中。同年,ALICE 合作组织开始开发性能更高的新型 MAPS,以组装新的探测器,取代在大型强子对撞机运行 1 和 2 期间使用的内部跟踪系统。从2019年开始,ALICE合作组织利用在设计ALPIDE传感器过程中获得的经验,开始了新的开发阶段,即ITS3项目。该项目的目标是在 65 nm CMOS 节点的晶圆尺寸传感器基础上,设计出第一个真正的圆柱形探测器。这个新探测器预计将在大型强子对撞机第 4 运行阶段采集数据。ALICE 合作组织提交了一份新实验的建议书,该实验将在大型强子对撞机第 5 运行阶段之前安装,以取代目前的探测器系统。根据近几年在 MAPS 上获得的经验,我们的想法是设计一个紧凑型全硅探测器,它将为夸克-胶子质点表征提供前所未有的洞察力。
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Applications of CMOS technology at the ALICE experiment
Monolithic Active Pixel Sensors (MAPS) combine the sensing part and the front-end electronics in the same silicon layer, making use of CMOS technology. Profiting from the progresses of this commercial process, MAPS have been undergoing significant advances over the last decade in terms of integration densities, radiation hardness and readout speed. The first application of MAPS in high energy physics has been the PXL detector, installed in 2014 as the vertexer of the STAR experiment at BNL. In the same years, ALICE Collaboration started the development of a new MAPS with improved performances, to assemble a new detector to replace the Inner Tracking System used during LHC Run 1 and 2. This effort lead to the ALPIDE sensor, today successfully equipped in a large variety of systems. Starting from 2019, profiting from the experience acquired during the design of the ALPIDE sensor, the ALICE Collaboration embarked on a new development phase, the ITS3 project. Here the goal is to design the first truly cylindrical detector based on wafer-size sensors in 65 nm CMOS node. This new detector is expected to take data during LHC Run 4. ALICE Collaboration submitted a proposal for a new experiment, to be installed in place of the present detector system before the LHC Run 5. Building on the experience on MAPS acquired in the recent years, the idea is to design a compact all silicon detector, that will give unprecedented insight into the quark-gluon plasma characterization.
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