Sensitive and accurate femtosecond pulse characterization via two-photon absorption in Fabry-Pérot laser diodes

Fuente: arXiv
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Autori principali: Chlebowski, Adrian F., Mnich, Jakub, Sterczewski, Lukasz A., Sotor, Jaroslaw
Natura: Preprint
Pubblicazione: 2025
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author Chlebowski, Adrian F.
Mnich, Jakub
Sterczewski, Lukasz A.
Sotor, Jaroslaw
author_facet Chlebowski, Adrian F.
Mnich, Jakub
Sterczewski, Lukasz A.
Sotor, Jaroslaw
contents Semiconductor lasers offer native bifunctionality enabling coherent light emission and linear photodetection. They can also operate as sensitive two-photon absorption detectors due to the third-order nonlinearity of the heterostructure constituting the active region. The strong two-photon response at room temperature is highly desired in ultrafast optics, where such detectors are used for interferometric characterization of femtosecond light pulses for shape and duration. Another niche is pulse detection in dual-comb ranging. While prior studies have focused on the two-photon response of commercial photodiodes or proprietary semiconductor microcavities for intensity autocorrelation measurements, a systematic analysis of the semiconductor lasers ability to accurately characterize the optical pulse width is missing. To address this niche, here we measure autocorrelation traces of femtosecond pulses with varying durations from sub 55 fs to 260 fs at the common 1.5 $μ$m wavelength using AlGaAs and InGaAsP laser diodes designed to operate at emission wavelengths of 0.95 $μ$m and 1.3 $μ$m, respectively. We validate the obtained waveforms using a silicon avalanche photodetector and conventional crystal-based second-harmonic autocorrelator. We consider the effects of optical polarization, operation mode and electrical load resistance on the shape and intensity of generated electrical signals. Our results prove the suitability of Fabry-Pérot laser structures for interferometric autocorrelation measurements of 53 $μ$W (220 fJ pulse energy) average power pulses as short as 36 fs with a mean square error of 7 $\times$ 10$^{-3}$.
format Preprint
id arxiv_https___arxiv_org_abs_2507_03978
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Sensitive and accurate femtosecond pulse characterization via two-photon absorption in Fabry-Pérot laser diodes
Chlebowski, Adrian F.
Mnich, Jakub
Sterczewski, Lukasz A.
Sotor, Jaroslaw
Optics
Semiconductor lasers offer native bifunctionality enabling coherent light emission and linear photodetection. They can also operate as sensitive two-photon absorption detectors due to the third-order nonlinearity of the heterostructure constituting the active region. The strong two-photon response at room temperature is highly desired in ultrafast optics, where such detectors are used for interferometric characterization of femtosecond light pulses for shape and duration. Another niche is pulse detection in dual-comb ranging. While prior studies have focused on the two-photon response of commercial photodiodes or proprietary semiconductor microcavities for intensity autocorrelation measurements, a systematic analysis of the semiconductor lasers ability to accurately characterize the optical pulse width is missing. To address this niche, here we measure autocorrelation traces of femtosecond pulses with varying durations from sub 55 fs to 260 fs at the common 1.5 $μ$m wavelength using AlGaAs and InGaAsP laser diodes designed to operate at emission wavelengths of 0.95 $μ$m and 1.3 $μ$m, respectively. We validate the obtained waveforms using a silicon avalanche photodetector and conventional crystal-based second-harmonic autocorrelator. We consider the effects of optical polarization, operation mode and electrical load resistance on the shape and intensity of generated electrical signals. Our results prove the suitability of Fabry-Pérot laser structures for interferometric autocorrelation measurements of 53 $μ$W (220 fJ pulse energy) average power pulses as short as 36 fs with a mean square error of 7 $\times$ 10$^{-3}$.
title Sensitive and accurate femtosecond pulse characterization via two-photon absorption in Fabry-Pérot laser diodes
topic Optics
url https://arxiv.org/abs/2507.03978