Proposal for a quantum random number generator using coherent light and a non-classical observable

Author:

Gerry Christopher C.1,Birrittella Richard J.2ORCID,Alsing Paul M.2,Hossameldin Amr3ORCID,Eaton Miller3ORCID,Pfister Olivier3ORCID

Affiliation:

1. Lehman College, The City University of New York

2. Air Force Research Laboratory

3. University of Virginia

Abstract

The prototype quantum random number (random bit) generator (QRNG) consists of one photon at a time falling on a 50:50 beam splitter followed by random detection in one or the other output beams due to the irreducible probabilistic nature of quantum mechanics. Due to the difficulties in producing single photons on demand, in practice, pulses of weak coherent (laser) light are used. In this paper, we take a different approach, one that uses moderate coherent light. It is shown that a QRNG can be implemented by performing photon-number parity measurements. For moderate coherent light, the probabilities of obtaining even or odd parity in photon counts are 0.5 each. Photon counting with single-photon resolution can be performed through use of a cascade of beam splitters and single-photon detectors, as was done recently in a photon-number parity-based interferometry experiment involving coherent light. We highlight the point that unlike most quantum-based random number generators, our proposal does not require the use of classical de-biasing algorithms or post-processing of the generated bit sequence.

Funder

National Research Council Research Associate

Air Force Research Laboratory

Air Force Office of Scientific Research

National Science Foundation

Thomas Jefferson National Accelerator Facility

Publisher

Optica Publishing Group

Subject

Atomic and Molecular Physics, and Optics,Statistical and Nonlinear Physics

Cited by 3 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Applications of Entanglement: Heisenberg-Limited Interferometry and Quantum Information Processing;Introductory Quantum Optics;2023-11-30

2. Random Number Generators;Deterministic and Stochastic Approaches in Computer Modeling and Simulation;2023-10-06

3. Resolution of 100 photons and quantum generation of unbiased random numbers;Nature Photonics;2022-12-19

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