Bayesian optimization of Fisher Information in nonlinear multiresonant quantum photonics gyroscopes

We propose an on-chip gyroscope based on nonlinear multiresonant optics in a thin film resonator that combines high sensitivity, compact form factor, and low power consumption simultaneously. We theoretically analyze a novel metric – Fisher Information capacity of a multiresonant nonlinear photonic...

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Veröffentlicht in:Nanophotonics (Berlin, Germany) Germany), 2024-03, Vol.13 (13), p.2401-2416
Hauptverfasser: Sun, Mengdi, Kovanis, Vassilios, Lončar, Marko, Lin, Zin
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Sprache:eng
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Zusammenfassung:We propose an on-chip gyroscope based on nonlinear multiresonant optics in a thin film resonator that combines high sensitivity, compact form factor, and low power consumption simultaneously. We theoretically analyze a novel metric – Fisher Information capacity of a multiresonant nonlinear photonic cavity – to fully characterize the sensitivity of our gyroscope under fundamental quantum noise conditions. Leveraging Bayesian optimization techniques, we directly maximize the nonlinear multiresonant Fisher Information. Our optimization approach orchestrates a harmonious convergence of multiple physical phenomena – including noise squeezing, nonlinear wave mixing, nonlinear critical coupling, and noninertial signals – all encapsulated within a single sensor-resonator, thereby significantly augmenting sensitivity. We show that improvement is possible over the shot-noise limited linear gyroscope with the same footprint, intrinsic quality factors, and power budget.
ISSN:2192-8614
2192-8606
2192-8614
DOI:10.1515/nanoph-2024-0032