Nonreciprocity enhanced Quantum Gyroscopes based on Surface Acoustic Waves
Y.T.Zhu, Shibei Xue, Fangfang Ju, Haidong Yuan

TL;DR
This paper proposes a quantum gyroscope utilizing nonreciprocal surface acoustic waves with multiple-point couplings, enhancing sensitivity and signal clarity by exploiting nonlocality and nonreciprocity effects at the quantum level.
Contribution
It introduces a novel quantum gyroscope design based on multiple-point couplings and nonreciprocity, surpassing traditional single-point coupling systems in sensitivity and noise reduction.
Findings
Nonreciprocal transfer enhances signal-to-noise ratio.
Multiple-point couplings induce time-delayed, non-Markovian dynamics.
System topology critically influences directional coupling and gyroscope performance.
Abstract
Surface acoustic waves (SAWs), as Rayleigh waves generated by elastic media, have been used in gyroscopes for over 40 years due to their unique propagation characteristics. However, their working principle, based on Coriolis effects, has become increasingly ineffective for addressing modern sensing challenges in complex scenarios. Fortunately, recent advancements in quantized SAWs offer a promising solution: SAWs operating at extremely low pump powers (approximately at the single-phonon level) can exhibit substantial quantum coherence, enabling investigations into the fundamental limits of SAW gyroscopes as constrained by the Heisenberg uncertainty relation. In particular, when multiple SAWs couple to a common waveguide at distinct locations, the nonlocality arising from the spatial separation among coupling points induces directional coupling between the SAWs. To elucidate this…
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