Readout Optimization of Multi-Amplifier Sensing Charge-Coupled Devices for Single-Quantum Measurement
Ana M. Botti, Brenda A. Cervantes-Vergara, Claudio R. Chavez, Fernando, Chierchie, Alex Drlica-Wagner, Juan Estrada, Guillermo Fernandez Moroni,, Stephen E. Holland, Blas J. Irigoyen Gimenez, Agustin J. Lapi, Edgar Marrufo, Villalpando, Miguel Sofo Haro, Javier Tiffenberg

TL;DR
This paper introduces a novel MAS-CCD sensor architecture with multiple non-destructive amplifiers that significantly reduces readout noise and time, enabling single-photon detection for advanced imaging and quantum applications.
Contribution
The work presents the design and testing of MAS-CCD with multiple amplifiers, achieving sub-electron noise and optimized readout speed through new operational modes.
Findings
Achieved sub-electron readout noise with MAS-CCD.
Demonstrated noise reduction by combining signals from multiple amplifiers.
Enabled single-photon resolution in silicon detectors.
Abstract
The non-destructive readout capability of the Skipper Charge Coupled Device (CCD) has been demonstrated to reduce the noise limitation of conventional silicon devices to levels that allow single-photon or single-electron counting. The noise reduction is achieved by taking multiple measurements of the charge in each pixel. These multiple measurements come at the cost of extra readout time, which has been a limitation for the broader adoption of this technology in particle physics, quantum imaging, and astronomy applications. This work presents recent results of a novel sensor architecture that uses multiple non-destructive floating-gate amplifiers in series to achieve sub-electron readout noise in a thick, fully-depleted silicon detector to overcome the readout time overhead of the Skipper-CCD. This sensor is called the Multiple-Amplifier Sensing Charge-Coupled Device (MAS-CCD) can…
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