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Quantum Super-Resolution with Balanced Homodyne Detection in Low-Earth-Orbit

Quantum Physics 2024-01-17 v2

Abstract

Quantum super-resolution involves resolving two sources below the Rayleigh limit using quantum optics. Such a technique would allow high-precision inter-satellite positioning and tracking on communication and navigation constellations. Due to the size, weight and power constraints typical of low-earth-orbit (LEO) satellites, a simple solution is often preferred. Here, we show that a balanced homodyne detection (BHD) setup using a shaped single-mode local oscillator can achieve super-resolution despite typical photonic losses. We further analyze the impact of a fluctuating and fixed centroid misalignment due to satellite pointing issues, and find that fixed misalignment is comparatively more detrimental to the performance of a BHD setup. Thus, our study provides a practical assessment of BHD to achieve super-resolution on a modern LEO satellite platform. Finally, we discuss how our analysis can be extended to stellar sources for astronomical applications.

Keywords

Cite

@article{arxiv.2306.06541,
  title  = {Quantum Super-Resolution with Balanced Homodyne Detection in Low-Earth-Orbit},
  author = {Ronakraj K Gosalia and Robert Malaney and Ryan Aguinaldo and Jonathan Green},
  journal= {arXiv preprint arXiv:2306.06541},
  year   = {2024}
}

Comments

9 pages, 5 figures, comments welcome