English

Spectrum analysis with quantum dynamical systems

Quantum Physics 2016-05-04 v1

Abstract

Measuring the power spectral density of a stochastic process, such as a stochastic force or magnetic field, is a fundamental task in many sensing applications. Quantum noise is becoming a major limiting factor to such a task in future technology, especially in optomechanics for temperature, stochastic gravitational wave, and decoherence measurements. Motivated by this concern, here we prove a measurement-independent quantum limit to the accuracy of estimating the spectrum parameters of a classical stochastic process coupled to a quantum dynamical system. We demonstrate our results by analyzing the data from a continuous optical phase estimation experiment and showing that the experimental performance with homodyne detection is close to the quantum limit. We further propose a spectral photon counting method that can attain quantum-optimal performance for weak modulation and a coherent-state input, with an error scaling superior to that of homodyne detection at low signal-to-noise ratios.

Keywords

Cite

@article{arxiv.1603.02137,
  title  = {Spectrum analysis with quantum dynamical systems},
  author = {Shilin Ng and Shan Zheng Ang and Trevor A. Wheatley and Hidehiro Yonezawa and Akira Furusawa and Elanor H. Huntington and Mankei Tsang},
  journal= {arXiv preprint arXiv:1603.02137},
  year   = {2016}
}

Comments

12 pages, 4 figures

R2 v1 2026-06-22T13:05:24.776Z