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Time uncertainty and fundamental sensitivity limits in quantum sensing: Application to optomechanical gravimetry

  • Salman Sajad Wani
  • , Saif Al-Kuwari
  • , Arshid Shabir
  • , Paolo Vezio
  • , Francesco Marino
  • , Mir Faizal
  • Hamad bin Khalifa University
  • Canadian Quantum Research Center
  • University of Florence
  • National Research Council of Italy
  • University of British Columbia
  • Durham University
  • Hasselt University

Research output: Contribution to journalArticlepeer-review

Abstract

High-sensitivity accelerometers and gravimeters, achieving the ultimate limits of measurement sensitivity, are key tools for advancing both fundamental and applied physics. While numerous platforms have been proposed to achieve this goal, from atom interferometers to optomechanical systems, all of these studies neglect the effects of intrinsic quantum uncertainty in time estimation. Starting from the Hamiltonian of a generic linear quantum sensor, we derive the two-parameter quantum Fisher information matrix and establish the corresponding Cramér-Rao bound, treating time as an uncertain (nuisance) parameter. Our analysis reveals a fundamental coupling between time and signal estimation that inherently degrades measurement sensitivity, with the standard single-parameter quantum limit recovered only at specific interrogation times or under special decoupling conditions. We then apply these results to an optomechanical gravimeter and explicitly derive an optimal decoupling condition under which the effects of time uncertainty are averaged out in a continuous measurement scheme. Our approach is general and can be readily extended to a broad class of quantum sensors.

Original languageEnglish
Article number032609
Pages (from-to)1-11
Number of pages11
JournalPhysical Review A
Volume113
Issue number3
DOIs
Publication statusPublished - 2026

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