English

Mid- and long-wavelength infrared computational ghost spectroscopy

Optics 2026-07-17 v1

Abstract

Spectral-domain ghost imaging enables high-resolution spectroscopy with a single-pixel detector. The technique does not rely on spectrally resolved detectors, which makes it inherently robust against turbulence and particularly adapted to weak-light conditions. These features are very attractive for spectral imaging in the mid-infrared region which hosts numerous molecular absorption features but lacks highly sensitive detectors. The implementation of spectral ghost imaging in the mid-infrared has however been limited by the absence of suitable light sources and detectors capable of generating and measuring spectral fluctuations in real time. Here, we demonstrate spectral-domain computational ghost imaging in the mid-infrared based on a nonlinear frequency downconversion scheme. Pre-programmed spectral patterns imposed on broadband light at 1.5 mm using a programmable spectral filter are transferred into the mid-infrared through difference-frequency generation in a nonlinear crystal. This enables computational ghost spectroscopy with a spectral resolution of 0.62 cm-1 using a single-pixel mid-infrared detector. The method is flexible, broadly applicable and, as proof of concept, we demonstrate ghost spectroscopy in mid-wavelength infrared and long-wavelength infrared bands using the nonlinear frequency conversion in chirped-poling lithium niobate and ZnGeP2 crystals, respectively. Our approach provides a new avenue for mid-infrared spectroscopy, remote sensing and spectral imaging.

Cite

@article{arxiv.2607.15725,
  title  = {Mid- and long-wavelength infrared computational ghost spectroscopy},
  author = {Linzhen He and Han Wu and Wei Deng and Mingzhu She and Bo Hu and Zunwang Bo and Shensheng Han and Weili Zhang and Houkun Liang and Goëry Genty},
  journal= {arXiv preprint arXiv:2607.15725},
  year   = {2026}
}

Comments

23 pages, 8 figures