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Enhancing the performance of quantum radar with zero-photon subtraction

  • Shengli Zhang
  • , Liangsheng Li
  • , Maoxin Liu
  • , Jinchun Li
  • , Wang Sun
  • , Quanchun Yu
  • National Key Laboratory of Scattering and Radiation
  • Beijing Normal University

Research output: Contribution to journalArticlepeer-review

Abstract

Quantum radar, also known as quantum illumination, is a type of quantum-sensing protocol for detecting noncooperative targets hidden in noisy environments. Recently, considerable research efforts have been focused on optimizing quantum illumination via conditional photon-detection methods, such as photon subtraction and photon catalysis of the entanglement source. However, to date, almost none of these studies have considered the probability of successful detection of nonzero photons. Often, the probability of conditional nonzero photon detection is extremely low, which may negate the advantage of conditional measurements in a quantum radar. In this paper, we propose enhancing the performance of quantum radars using zero-photon subtraction (ZPS), where no physical photons are subtracted from a given optical system. We demonstrate that the probability of ZPS is one or two orders of magnitude higher than that of nonzero photon detection. Our results show that ZPS helps enhance the performance of quantum radars, even when the probability of photon detection is considered. Moreover, in this paper, we consider a more realistic quantum radar in which target detection is performed using amplitude-damped quantum entanglement, which is more commonly used in the preparation of quantum entanglement in radar transmitters. This means that ZPS is a more efficient conditional photon-detection method for quantum illumination, providing a more robust scheme for developing future quantum radars.

Original languageEnglish
Article number022627
JournalPhysical Review A
Volume111
Issue number2
DOIs
Publication statusPublished - Feb 2025

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