Single-photon time-stretch infrared spectroscopy

Fuente: arXiv
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Main Authors: Sun, Ben, Huang, Kun, Ma, Huijie, Fang, Jianan, Zheng, Tingting, Chu, Yongyuan, Guo, Hairun, Liang, Yan, Wu, E, Yan, Ming, Zeng, Heping
Format: Preprint
Published: 2026
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_version_ 1866910268917809152
author Sun, Ben
Huang, Kun
Ma, Huijie
Fang, Jianan
Zheng, Tingting
Chu, Yongyuan
Guo, Hairun
Liang, Yan
Wu, E
Yan, Ming
Zeng, Heping
author_facet Sun, Ben
Huang, Kun
Ma, Huijie
Fang, Jianan
Zheng, Tingting
Chu, Yongyuan
Guo, Hairun
Liang, Yan
Wu, E
Yan, Ming
Zeng, Heping
contents Sensitive mid-infrared (MIR) spectroscopy is highly demanded in various fields ranging from industrial inspection, biomedical diagnosis to astronomical observation. However, the detection sensitivity of conventional MIR spectrometers has been severely limited by excessive noises for existing infrared sensors, which hinders widespread use in photon-scarce scenarios. Here, we devise and implement a broadband MIR single-photon time-stretch spectrometer based on high-fidelity spectral upconversion and time-correlated coincidence counting. Specifically, a nanophotonic supercontinuum illumination covering 2.4-4.2 $μ$m is nonlinearly converted to the near-infrared band, where low-loss single-mode fiber and high-performance silicon detector can be leveraged to facilitate dispersive operation and sensitive detection, respectively. The arrival time for the dispersed upconversion photons is precisely registered with a low-timing-jitter photon counter, which enables us to obtain a high spectral resolution about 0.5 cm$^{-1}$ under a low-light-level illumination down to 0.14 photons/nm/pulse. In comparison to previous MIR upconversion spectrometers, the presented time-stretch architecture favors single-pixel simplicity and high-throughput acquisition for the single-photon spectral measurement. The achieved MIR spectroscopic features of broadband spectral coverage, sub-wavenumber resolution, single-photon sensitivity, and room-temperature operation would stimulate immediate applications in material and life sciences.
format Preprint
id arxiv_https___arxiv_org_abs_2605_29215
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Single-photon time-stretch infrared spectroscopy
Sun, Ben
Huang, Kun
Ma, Huijie
Fang, Jianan
Zheng, Tingting
Chu, Yongyuan
Guo, Hairun
Liang, Yan
Wu, E
Yan, Ming
Zeng, Heping
Optics
Sensitive mid-infrared (MIR) spectroscopy is highly demanded in various fields ranging from industrial inspection, biomedical diagnosis to astronomical observation. However, the detection sensitivity of conventional MIR spectrometers has been severely limited by excessive noises for existing infrared sensors, which hinders widespread use in photon-scarce scenarios. Here, we devise and implement a broadband MIR single-photon time-stretch spectrometer based on high-fidelity spectral upconversion and time-correlated coincidence counting. Specifically, a nanophotonic supercontinuum illumination covering 2.4-4.2 $μ$m is nonlinearly converted to the near-infrared band, where low-loss single-mode fiber and high-performance silicon detector can be leveraged to facilitate dispersive operation and sensitive detection, respectively. The arrival time for the dispersed upconversion photons is precisely registered with a low-timing-jitter photon counter, which enables us to obtain a high spectral resolution about 0.5 cm$^{-1}$ under a low-light-level illumination down to 0.14 photons/nm/pulse. In comparison to previous MIR upconversion spectrometers, the presented time-stretch architecture favors single-pixel simplicity and high-throughput acquisition for the single-photon spectral measurement. The achieved MIR spectroscopic features of broadband spectral coverage, sub-wavenumber resolution, single-photon sensitivity, and room-temperature operation would stimulate immediate applications in material and life sciences.
title Single-photon time-stretch infrared spectroscopy
topic Optics
url https://arxiv.org/abs/2605.29215