English

Heisenberg limited single-mode quantum metrology

Quantum Physics 2019-10-14 v1

Abstract

Two-mode interferometers, such as Michelson interferometer based on two spatial optical modes, lay the foundations for quantum metrology. Instead of exploring quantum entanglement in the two-mode interferometers, a single bosonic mode also promises a measurement precision beyond the shot-noise limit (SNL) by taking advantage of the infinite-dimensional Hilbert space of Fock states. However, the experimental demonstration still remains elusive. Here, we demonstrate a single-mode phase estimation that approaches the Heisenberg limit (HL) unconditionally. Due to the strong dispersive nonlinearity and long coherence time of a microwave cavity, quantum states of the form (0+N)/2\left(\left|0\right\rangle +\left|N\right\rangle \right)/\sqrt{2} are generated, manipulated and detected with high fidelities, leading to an experimental phase estimation precision scaling as N0.94\sim N^{-0.94}. A 9.19.1~dB\mathrm{dB} enhancement of the precision over the SNL at N=12N=12, which is only 1.71.7~dB\mathrm{dB} away from the HL, is achieved. Our experimental architecture is hardware efficient and can be combined with the quantum error correction techniques to fight against decoherence, thus promises the quantum enhanced sensing in practical applications.

Keywords

Cite

@article{arxiv.1901.09620,
  title  = {Heisenberg limited single-mode quantum metrology},
  author = {W. Wang and Y. Wu and Y. Ma and W. Cai and L. Hu and X. Mu and Y. Xu and Zi-Jie Chen and H. Wang and Y. P. Song and H. Yuan and C. -L. Zou and L. -M. Duan and L. Sun},
  journal= {arXiv preprint arXiv:1901.09620},
  year   = {2019}
}

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R2 v1 2026-06-23T07:23:54.943Z