A Radiation-Hard 8-Channel 15-Bit 40-MSPS ADC for the ATLAS Liquid Argon Calorimeter Readout

IF 3.2
Rui Xu;Jaroslav Bán;Sarthak Kalani;Chen-Kai Hsu;Subhajit Ray;Brian Kirby;Gabriel Matos;Julia Gonski;Andrew C. Smith;Daniel M. Williams;Kiley E. Kennedy;Alan Kahn;Michelle Contreras-Cossio;Lauren Larson;Michael Himmelsbach;Devanshu Panchal;Michael Unanian;Xiangxing Yang;Nan Sun;John Parsons;Timothy R. Andeen;Peter R. Kinget
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Abstract

The custom design of a radiation-hardened, 8-channel, 40-MSPS, 15-bit resolution, 14.2-bit dynamic range, 11.4-ENOB ADC data acquisition ASIC fabricated in a commercial 65-nm triple-well CMOS technology is presented. The ADC is developed for and integrates seamlessly into the readout system for the ATLAS liquid argon (LAr) calorimeter in the high-luminosity large hadron collider (HLLHC) upgrade at CERN, which will require a total of 364 936 ADC channels. A three-stage MDAC+SAR pipelined ADC architecture was designed to meet the physics requirements and scientific goals of the ATLAS experiment. The ADC is a fully self-contained data acquisition system that includes foreground calibration, digital data processing, digital control, and supporting circuitry. The measured performance shows the ADC achieves a competitive dynamic range and SNDR, and it meets or exceeds the ATLAS analog requirements. Radiation tolerance and scalability design considerations were implemented at the device-, circuit-, and system-level. Radiation-hardening-by-design techniques used include redundancy for digital circuits, the use of MiM capacitors, and a hybrid RC-DAC for the ADC core. The ADC ASIC was demonstrated to be robust against the effects of the intense radiation expected in the HL-LHC experimental environment.
用于ATLAS液氩量热计读出的抗辐射8通道15位40-MSPS ADC
介绍了一种采用商用65纳米三孔CMOS技术制造的抗辐射、8通道、40-MSPS、15位分辨率、14.2位动态范围、11.4 enob ADC数据采集ASIC的定制设计。ADC是为欧洲核子研究中心高亮度大型强子对撞机(HLLHC)升级中的ATLAS液氩(LAr)量热计读出系统开发的,并无缝集成到该系统中,该系统总共需要364 936个ADC通道。为了满足ATLAS实验的物理要求和科学目标,设计了一种三级MDAC+SAR流水线ADC体系结构。ADC是一个完全独立的数据采集系统,包括前景校准、数字数据处理、数字控制和支持电路。测试结果表明,该ADC实现了具有竞争力的动态范围和SNDR,满足或超过了ATLAS模拟要求。辐射容限和可扩展性设计考虑在器件、电路和系统级实现。采用的设计防辐射技术包括数字电路的冗余、MiM电容器的使用以及ADC核心的混合RC-DAC。在HL-LHC实验环境中,ADC ASIC具有较强的抗强辐射性能。
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