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A Radiation-Hard 8-Channel 15-Bit 40-MSPS ADC for the ATLAS Liquid Argon Calorimeter ReadoutThe 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.
Document ID
20250007191
Acquisition Source
2230 Support
Document Type
Reprint (Version printed in journal)
Authors
Rui Xu ORCID
(Columbia University New York, United States)
Jaroslav Bán
(Columbia University New York, United States)
Sarthak Kalani ORCID
(Columbia University New York, United States)
Chen-Kai Hsu ORCID
(The University of Texas at Austin Austin, United States)
Subhajit Ray ORCID
(Columbia University New York, United States)
Brian Kirby ORCID
(Columbia University New York, United States)
Gabriel Matos
(Columbia University New York, United States)
Julia Gonski ORCID
(Columbia University New York, United States)
Andrew C Smith ORCID
(Columbia University New York, United States)
Daniel M Williams ORCID
(Columbia University New York, United States)
Kiley E Kennedy ORCID
(Columbia University New York, United States)
Alan Kahn
(Columbia University New York, United States)
Michelle Contreras-Cossio ORCID
(The University of Texas at Austin Austin, United States)
Lauren Larson ORCID
(The University of Texas at Austin Austin, United States)
Michael Himmelsbach ORCID
(The University of Texas at Austin Austin, United States)
Devanshu Panchal ORCID
(The University of Texas at Austin Austin, United States)
Michael Unanian
(Columbia University New York, United States)
Xiangxing Yang ORCID
(The University of Texas at Austin Austin, United States)
Nan Sun
(The University of Texas at Austin Austin, United States)
John Parsons ORCID
(Columbia University New York, United States)
Timothy R Andeen ORCID
(The University of Texas at Austin Austin, United States)
Peter R. Kinget ORCID
(Columbia University New York, United States)
Date Acquired
July 18, 2025
Publication Date
May 28, 2025
Publication Information
Publication: IEEE Open Journal of the Solid-State Circuits Society
Publisher: Institute of Electrical and Electronics Engineers
Volume: 5
Issue Publication Date: May 28, 2025
e-ISSN: 2644-1349
Subject Category
Electronics and Electrical Engineering
Funding Number(s)
CONTRACT_GRANT: 80NSSC22K1176
CONTRACT_GRANT: DE-SC0007890
CONTRACT_GRANT: PHY 1948993
CONTRACT_GRANT: PHY 2013070
Distribution Limits
Public
Copyright
Use by or on behalf of the US Gov. Permitted.
Technical Review
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