English

Quantum Metrology via Floquet-Engineered Two-axis Twisting and Turn Dynamics

Quantum Physics 2025-11-07 v2 Atomic Physics

Abstract

One core of quantum metrology is the utilization of entanglement to enhance measurement precision beyond the standard quantum limit. Here, we utilize the Floquet-engineered two-axis twisting (TAT) and turn dynamics to generate GHZ-like states for quantum metrology. Using both analytical semi-classical and quantum approaches, we find that the desired NN-particle GHZ-like state can be produced in a remarkably short time toptlnN/Nt_\mathrm{opt}\propto \ln{N}/{N}, and its quantum Fisher information FQoptN2F^\mathrm{opt}_\mathrm{Q}\propto N^2 approaches the Heisenberg limit. Owing to the rapid state preparation, it shows outstanding robustness against decoherence. Moreover, using the Floquet-engineered anti-TAT-and-turn, one may implement an efficient interaction-based readout protocol to extract the signal encoded in this GHZ-like state. This Floquet-engineered anti-TAT-and-turn approach offers a viable method to achieve effective time-reversal dynamics to improve measurement precision and resilience against detection noise, all without the need to invert the sign of the nonlinear interaction. This study paves a way for achieving entanglement-enhanced quantum metrology via rapid generation of GHZ-like states at high particle numbers through continuous Floquet engineering.

Keywords

Cite

@article{arxiv.2409.08524,
  title  = {Quantum Metrology via Floquet-Engineered Two-axis Twisting and Turn Dynamics},
  author = {Jihao Ma and Yi Shen and Jiahao Huang and Chaohong Lee},
  journal= {arXiv preprint arXiv:2409.08524},
  year   = {2025}
}

Comments

18 pages, 7 figures

R2 v1 2026-06-28T18:43:15.527Z