English

Near Infrared Quantum Ghost Spectroscopy for Threats Detection

Quantum Physics 2025-09-29 v1

Abstract

Quantum Sensing is a rapidly growing branch of research within the area of quantum science and technology offering key resources, beyond classical ones, with potential for commercialisation of novel (quantum) sensors. The exploitation of quantum resources offered by photons can boost the performance of quantum sensors for innovative and challenging applications. In this paper we build on the idea of the Quantum Ghost Spectroscopy (QGS), i.e. the counterpart in the frequency domain of Quantum Ghost Imaging (QGI), targeting specific applications in the detection of possible threats. This is implemented by exploiting the opportunities offered by Quantum Optics, i.e. the generation of photon pairs characterized by spectral correlations. We will discuss our main results obtained with pure QGS experiments showing that it is possible to assess the presence of a target dealing with a low resources measurement. The time-frequency domain reveals a huge potential for several applications and frequency correlations represent a versatile tool that can be exploited to enable the spectral analysis of objects where a direct measurement would not be feasible (e.g. security). The use of nondegenerate sources of correlated photons allowed to reveal spectral features in the near infrared wavelengths employing the usual detectors for the visible region.

Keywords

Cite

@article{arxiv.2409.00833,
  title  = {Near Infrared Quantum Ghost Spectroscopy for Threats Detection},
  author = {Andrea Chiuri and Federico Angelini and Ilaria Gianani and Simone Santoro and Marco Barbieri},
  journal= {arXiv preprint arXiv:2409.00833},
  year   = {2025}
}
R2 v1 2026-06-28T18:30:46.157Z