Precision measurement of the environmental temperature by tunable double optomechanically induced transparency with a squeezed field
arXiv:1506.00812 · doi:10.1103/PhysRevA.91.063827
Abstract
A tunable double optomechanically induced transparency (OMIT) with a squeezed field is investigated in a system consisting of an optomechanical cavity coupled to a charged nanomechanical resonator via Coulomb interaction. Such a double OMIT can be achieved by adjusting the strength of the Coulomb interaction, and observed even with a single-photon squeezed field at finite temperature. Since it is robust against the cavity decay, but very sensitive to some parameters, such as the environmental temperature, the model under our consideration can be applied as a quantum thermometer for precision measurement of the environmental temperature within the reach of current techniques.
8 pages, 6 figures, to be published in Phys. Rev. A
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Cited by in corpus (5)
- Macroscopic quantum entanglement in modulated optomechanics
- Highly sensitive optical sensor for precision measurement of electrical charges based on optomechanically induced difference-sideband generation
- Selective optomechanically-induced amplification with driven oscillators
- Tunable multi-channel inverse optomechanically induced transparency
- An efficiently and tunable switch between slow- and fast-light in double mode with an optomechanical system