Abstract
Mid-infrared (MIR) detection remains challenging due to limited detector sensitivity and strong background noise. Frequency up-conversion enables MIR detection with visible-range detectors but suffers from limited robustness and additional noise generated in the nonlinear process. We demonstrate a quantum-enhanced MIR frequency up-conversion detection system that generates strongly non-degenerate, time-correlated photon pairs via spontaneous parametric down-conversion and detects MIR photons under severe loss and noise. With a 62 dB transmission loss and background noise 28 times higher than the detected signal, the quantum signal-to-noise ratio substantially surpasses that of classical photon counting. The system achieves stable signal retrieval under unpredictable noise fluctuations, highlighting its robustness in dynamically varying environments. These results establish a basis for practical sensing and imaging applications of quantum-enhanced MIR detection.
| Original language | English |
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| Pages (from-to) | 6935-6938 |
| Number of pages | 4 |
| Journal | Optics Letters |
| Volume | 50 |
| Issue number | 22 |
| DOIs | |
| State | Published - 15 Nov 2025 |