Electron-to-photon noise transfer in mid-infrared semiconductor lasers

Fuente: arXiv
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Auteurs principaux: La Penna, Irene, Gabbrielli, Tecla, Hinkov, Borislav, Weih, Robert, Akikusa, Naota, Mischi, Lorenzo, Montori, Alessio, Borri, Simone, Consolino, Luigi, Cappelli, Francesco, De Natale, Paolo
Format: Preprint
Publié: 2025
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author La Penna, Irene
Gabbrielli, Tecla
Hinkov, Borislav
Weih, Robert
Akikusa, Naota
Mischi, Lorenzo
Montori, Alessio
Borri, Simone
Consolino, Luigi
Cappelli, Francesco
De Natale, Paolo
author_facet La Penna, Irene
Gabbrielli, Tecla
Hinkov, Borislav
Weih, Robert
Akikusa, Naota
Mischi, Lorenzo
Montori, Alessio
Borri, Simone
Consolino, Luigi
Cappelli, Francesco
De Natale, Paolo
contents Noise characteristics of state-of-the art light sources are crucial parameters in understanding their limitations towards quantum applications. This work describes a method to study the electrical noise transfer of current driver sources to the intensity noise of mid-infrared emission by commercial quantum and interband cascade lasers (QCLs and ICLs, respectively). A current driver with sub-shot electrical noise in a specific frequency range (up to 10 dB below the shot noise level) was developed for this purpose. This enables testing the performance of mid-infrared lasers when driven via such a quiet pump source. By using this novel current driver, we identify the fundamental noise of a QCL and an ICL, that is the laser intensity noise resulting solely from the internal dynamics of the laser under test. The proposed methodology allows us to retrieve the noise transfer function from current to light, showing that the main limitations in observing the quantum properties of the emitted photons come from laser excess noise and poor matching between laser and detection system in terms of bandwidth and optical power. From the analysis of the measured parameters, we highlight current technological limitations and suggest which key features should be optimized in mid-infrared systems for matching the performance required by quantum applications.
format Preprint
id arxiv_https___arxiv_org_abs_2512_05636
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Electron-to-photon noise transfer in mid-infrared semiconductor lasers
La Penna, Irene
Gabbrielli, Tecla
Hinkov, Borislav
Weih, Robert
Akikusa, Naota
Mischi, Lorenzo
Montori, Alessio
Borri, Simone
Consolino, Luigi
Cappelli, Francesco
De Natale, Paolo
Optics
Noise characteristics of state-of-the art light sources are crucial parameters in understanding their limitations towards quantum applications. This work describes a method to study the electrical noise transfer of current driver sources to the intensity noise of mid-infrared emission by commercial quantum and interband cascade lasers (QCLs and ICLs, respectively). A current driver with sub-shot electrical noise in a specific frequency range (up to 10 dB below the shot noise level) was developed for this purpose. This enables testing the performance of mid-infrared lasers when driven via such a quiet pump source. By using this novel current driver, we identify the fundamental noise of a QCL and an ICL, that is the laser intensity noise resulting solely from the internal dynamics of the laser under test. The proposed methodology allows us to retrieve the noise transfer function from current to light, showing that the main limitations in observing the quantum properties of the emitted photons come from laser excess noise and poor matching between laser and detection system in terms of bandwidth and optical power. From the analysis of the measured parameters, we highlight current technological limitations and suggest which key features should be optimized in mid-infrared systems for matching the performance required by quantum applications.
title Electron-to-photon noise transfer in mid-infrared semiconductor lasers
topic Optics
url https://arxiv.org/abs/2512.05636