Classical-driving-enhanced parameter-estimation precision of a non-Markovian dissipative two-state system
arXiv:1503.02260 · doi:10.1103/PhysRevA.91.052105
Abstract
The dynamics of quantum Fisher information (QFI) of the phase parameter in a driven two-state system is studied within the framework of non-Markovian dissipative process. The influences of memory effects, classical driving and detunings on the parameter-estimation precision are demonstrated by exactly solving the Hamiltonian under rotating-wave approximation. In sharp contrast with the results obtained in the presence of Markovian dissipation, we find that classical driving can drastically enhance the QFI, namely, the precision of parameter estimation in the non-Markovian regime. Moreover, the parameter-estimation precision may even be preserved from the influence of surrounding non-Markovian dissipation with the assistance of classical driving. Remarkably, we reveal that the enhancement and preservation of QFI highly depend on the combination of classical driving and non-Markovian effects. Finally, a phenomenological explanation of the underlying mechanism is presented in detail via the quasimode theory
7 pages, 5 figures. Revised version, accepted by PRA
References in corpus (6)
- Non-Markovian effects on the dynamics of entanglement
- Fisher information under decoherence in Bloch representation
- Non-Markovian dynamics in a spin star system: Exact solution and approximation techniques
- Enhanced quantum entanglement in the non-Markovian dynamics of biomolecular excitons
- Phase estimation without a priori knowledge in the presence of loss
- Multiple phase estimation for arbitrary pure states under white noise