English

Thermodynamic Limit for Linear Harmonic Oscillator Resonance Frequency Measurement

Applied Physics 2021-09-16 v1 Data Analysis, Statistics and Probability

Abstract

Thermodynamic fluctuations in mechanical resonators cause uncertainty in their frequency measurement, fundamentally limiting performance of frequency-based sensors. Recently, integrating nanophotonic motion readout with micro- and nano-mechanical resonators allowed practical chip-scale sensors to routinely operate near this limit in high-bandwidth measurements. However, the exact and general expressions for either thermodynamic frequency measurement uncertainty or efficient, real-time frequency estimators are not well established, particularly for fast and weakly-driven resonators. Here, we derive, and numerically validate, the Cramer-Rao lower bound (CRLB) and an efficient maximum-likelihood estimator for the frequency of a classical linear harmonic oscillator subject to thermodynamic fluctuations. For a fluctuating oscillator without external drive, the frequency Allan deviation calculated from simulated resonator motion data agrees with the derived CRLB σf=12πΓ2τ\sigma_f = {1 \over 2\pi}\sqrt{\Gamma \over 2\tau} for averaging times τ\tau below, as well as above, the relaxation time 1Γ1\over\Gamma. The CRLB approach is general and can be extended to driven resonators, non-negligible motion detection imprecision, as well as backaction from a continuous linear quantum measurement.

Keywords

Cite

@article{arxiv.2001.10612,
  title  = {Thermodynamic Limit for Linear Harmonic Oscillator Resonance Frequency Measurement},
  author = {Mingkang Wang and Vladimir Aksyuk},
  journal= {arXiv preprint arXiv:2001.10612},
  year   = {2021}
}

Comments

11 pages, 2 figures

R2 v1 2026-06-23T13:23:29.235Z