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January 18, 2026Fluctuation and Noise Letters0 citations

Randomness quantification in spontaneous emission

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CLChenxu LiSLS. H. LiuXMXiongfeng Ma

Key Points

  • The aim is to rigorously quantify randomness in quantum random number generators based on spontaneous emission.
  • Developed a quantum information-theoretic framework for randomness analysis.
  • Characterized two eavesdropping strategies: direct atom access and purification access.
  • Analyzed randomness generation through single-photon detection and temporal mode measurements.
  • Evaluated QRNGs based on spatial mode detection and phase fluctuations.
  • Single-photon detection and temporal mode measurements show vulnerabilities to direct adversary access.
  • QRNGs maintain a lower bound on randomness against purification access even with maximum information leakage.
  • Spatial mode detection and phase fluctuations provide robust security against both adversaries.
  • Quantitative calculations of intrinsic randomness for spontaneous emission-based QRNG schemes were provided.

Abstract

Quantum coherence serves as a fundamental resource for generating intrinsic randomness, yet the quantification of randomness in quantum random number generators (QRNGs) based on spontaneous emission has remained largely phenomenological. Existing randomness analysis lacks rigorous adversarial models and a clear characterization of the role of quantum coherence in these systems. In this work, we develop a comprehensive quantum information-theoretic framework for randomness generation in spontaneous emission processes. We characterize two distinct eavesdropping strategies: one where the adversary directly accesses the atom ensemble, and the other where the adversary accesses only its purification. Our analysis reveals that when randomness is generated through single-photon detection and temporal mode measurements, the QRNG is vulnerable to the first adversary scenario, though it still guarantees a lower bound on intrinsic randomness against the second adversary scenario even under maximal information leakage from the atoms. In contrast, QRNGs based on spatial mode detection and phase fluctuations demonstrate security against both types of adversaries, providing robust randomness generation. Furthermore, we provide a quantitative calculation of intrinsic randomness for these spontaneous-emission-based QRNG schemes.

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Cite This Study

Li et al. (2026) studied this question.

synapsesocial.com/papers/696c77afeb60fb80d1395f19https://doi.org/10.1142/s0219477525400310
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