Yield, noise and timing studies of ALICE ITS3 stitched sensor test structures: the MOST
Abstract
In the LHC long shutdown 3, the ALICE experiment upgrades the inner layers of its Inner Tracker System with three layers of wafer-scale stitched sensors bent around the beam pipe. Two stitched sensor evaluation structures, the MOnolithic Stitched Sensor (MOSS) and MOnolithic Stitched Sensor with Timing (MOST) allow the study of yield dependence on circuit density, power supply segmentation, stitching demonstration for power and data transmission, performance dependence on reverse bias, charge collection performance, parameter uniformity across the chip, and performance of wafer-scale data transmission. The MOST measures 25.9 cm x 0.25 cm, has more than 900,000 pixels of 18x18 m and emphasizes the validation of pixel circuitry with maximum density, together with a high number of power domains separated by switches allowing to disconnect faulty circuits. It employs 1 Gb/s 26 cm long data transmission using asynchronous, data-driven readout. This readout preserves information on pixel address, time of arrival and time over threshold. In the MOSS, by contrast, regions with different in-pixel densities are implemented to study yield dependence and are read synchronously. MOST test results validated the concept of power domain switching and the data transmission over 26 cm stitched lines which are to be employed on the full-size, full-functionality ITS3 prototype sensor, MOSAIX. Jitter of this transmission is still under study. This proceeding summarizes the performance of the stitched sensor test structures with emphasis on the MOST.
Cite
@article{arxiv.2507.16409,
title = {Yield, noise and timing studies of ALICE ITS3 stitched sensor test structures: the MOST},
author = {Jory Sonneveld and René Barthel and Szymon Bugiel and Leonardo Cecconi and João De Melo and Martin Fransen and Alessandro Grelli and Isis Hobus and Artem Isakov and Antoine Junique and Pedro Leitao and Magnus Mager and Younes Otarid and Francesco Piro and Marcel Rossewij and Mariia Selina and Sergei Solokhin and Walter Snoeys and Nicolas Tiltmann and Arseniy Vitkovskiy and Håkan Wennlöf},
journal= {arXiv preprint arXiv:2507.16409},
year = {2025}
}
Comments
Proceedings of the 17th Vienna Conference on Instrumentation 2025