Qubit thermometry for micromechanical resonators
arXiv:1103.2875 · doi:10.1103/PhysRevA.84.032105
Abstract
We address estimation of temperature for a micromechanical oscillator lying arbitrarily close to its quantum ground state. Motivated by recent experiments, we assume that the oscillator is coupled to a probe qubit via Jaynes-Cummings interaction and that the estimation of its effective temperature is achieved via quantum limited measurements on the qubit. We first consider the ideal unitary evolution in a noiseless environment and then take into account the noise due to non dissipative decoherence. We exploit local quantum estimation theory to assess and optimize the precision of estimation procedures based on the measurement of qubit population, and to compare their performances with the ultimate limit posed by quantum mechanics. In particular, we evaluate the Fisher information (FI) for population measurement, maximize its value over the possible qubit preparations and interaction times, and compare its behavior with that of the quantum Fisher information (QFI). We found that the FI for population measurement is equal to the QFI, i.e., population measurement is optimal, for a suitable initial preparation of the qubit and a predictable interaction time. The same configuration also corresponds to the maximum of the QFI itself. Our results indicate that the achievement of the ultimate bound to precision allowed by quantum mechanics is in the capabilities of the current technology.
9 pages, 5 figures, revised version, to appear on PRA
References in corpus (14)
- Resolved Sideband Cooling of a Micromechanical Oscillator
- Quantum criticality as a resource for quantum estimation
- Optical phase estimation in the presence of phase-diffusion
- Optimal quantum estimation of loss in bosonic channels
- Optimal quantum estimation in spin systems at criticality
- Optimal phase measurements with pure Gaussian states
- Quantum Limits of Thermometry
- Measurement of damping and temperature: Precision bounds in Gaussian dissipative channels
- Phase estimation for thermal Gaussian states
- An operational interpretation for multipartite entanglement
- Bayesian estimation in homodyne interferometry
- Optimal estimation of entanglement
- Optimal estimation of entanglement in optical qubit systems
- Detection of qubit-oscillator entanglement in nanoelectromechanical systems
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