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arXiv · 2604.25730

NTL-amplified cryogenic light detectors with optically transparent electrodes

Abstract

The Neganov-Trofimov-Luke (NTL) effect is used by experiments based on cryogenic detectors to boost the sensitivity of light-sensitive devices down to a few optical photons. In this work we introduce a silicon light-detector technology that implements NTL amplification at millikelvin temperatures using transparent indium-tin-oxide (ITO) electrodes. The ITO electrodes enable an electric field perpendicular to the wafer surface, mitigating surface charge recombination, and thanks to their optical properties, simultaneously serve as an anti-reflective coating. By combining these two functions in a single element, the fabrication process is simplified, yielding more robust and cost-effective devices. We report on the production and characterization of the first batch of these detectors. We performed a room-temperature characterization of the ITO electrodes, verifying the structural and optical characteristics of the deposited electrodes. We then operated 2 of these devices as cryogenic calorimeters at millikelvin temperatures. Finally, we develop a consistent analytical model for the NTL gain for both ionizing particles and optical photons, successfully describing the gain dependence on the NTL bias and explicitly accounting for the partial electrode coverage of the device surface.

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Matteo Biassoni, Andrea Nava, Oscar Azzolini, Mattia Beretta, Tommaso Bradanini, Chiara Brofferio, Paolo Carniti, Simone Copello, Mourad El Idrissi, Marco Faverzani, Elena Ferri, Massimo Girola, Luca Gironi, Claudio Gotti, Léonard Imbert, Giorgio Keppel, Nicola Manenti, Ilaria Molinari, Irene Nutini, Maura Pavan, Daniele Peracchi, Gianluigi Pessina, Sonja Schneidewind, Davide Trotta. 2026-04-28. NTL-amplified cryogenic light detectors with optically transparent electrodes. https://arxiv.org/abs/2604.25730

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