New Journal of Physics (Jan 2022)

Optical noise in a free-space quantum communications link from natural and nuclear disturbed environments

  • Brandon A Wilson,
  • Alexander Miloshevsky,
  • David A Hooper,
  • Warren Grice,
  • Nicholas A Peters

DOI
https://doi.org/10.1088/1367-2630/ac77f4
Journal volume & issue
Vol. 24, no. 6
p. 063035

Abstract

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Satellite communications at radio frequencies can experience a ‘blackout’ period following the atmospheric detonation of a nuclear weapon. The wavelengths used for free-space quantum communications will not incur the same ‘blackout’ effects from a nuclear detonation, but the optical systems will suffer from a phenomenon called redout . Redout occurs in an optical detector when ambient light scatters into the optical receiver, causing elevated background photon counts in the detector such that background noise overwhelms the signal. In this work, the duration of the redout effect is quantified from a nuclear disturbed environment on a ground-to-space quantum optical link. In addition, we comment on various techniques for reducing ambient and nuclear disturbed background counts in a quantum free-space optical link. For low-altitude nuclear detonations (i.e., under 50 km), the maximum interference time will be less than 1 min. Implementing a telescope, timing gate, and wavelength filter to the detector can reduce the background counts in the detector significantly. Aerosol levels and ground albedo are major contributors to background noise in a ground-to-satellite quantum channel, and ground station location should factor in both variables.

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