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Updated: Oct 8, 2026

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Published on: April 16, 2017
Thermal interaction-free-inspired ghost imaging
Abstract:
We propose an interaction-free ghost imaging scheme based on a thermal light source. The scheme exploits the quantum Zeno effect to suppress photon absorption by the sample and thus light-induced damage. Crucially, this suppression requires only that the interfering paths be distinguishable in principle; no quantum detection or measurement results are needed, thereby removing the requirement for single-photon detectors. Moreover, our scheme is built on high-intensity thermal illumination. This is the key difference between this work and traditional studies of interaction-free imaging relying on weak or single-photon illumination. We demonstrate that replacing entangled photon pairs with a thermal source can improve image quality without sacrificing the essence of interaction-free measurement. Consequently, our scheme achieves quantum Zeno effect-based enhancement of the imaging performance without requiring specialized quantum hardware such as entangled photon sources or single-photon detectors. We further show active suppression of background noise via controllable photon loss. Our work offers a practical and cost-effective route to non-destructive, high-quality imaging for light-sensitive samples in fields such as life sciences.
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