Quantum speed limit for the maximum coherent state under squeezed environment
arXiv:2110.03132 · doi:10.1088/1674-1056/ac0daf
Abstract
The quantum speed limit time for quantum system under squeezed environment is studied. We consider two typical models, the damped Jaynes-Cummings model and the dephasing model. For the damped Jaynes-Cummings model under squeezed environment, we find that the quantum speed limit time becomes larger with the squeezed parameter increasing and indicates symmetry about the phase parameter value . Meanwhile, the quantum speed limit time can also be influenced by the coupling strength between the system and environment. However, the quantum speed limit time for the dephasing model is determined by the dephasing rate and the boundary of acceleration region that interacting with vacuum reservoir can be broken when the squeezed environment parameters are appropriately chosen.
References in corpus (8)
- Quantum speed limit for physical processes
- Quantum speed limits in open system dynamics
- Geometric derivation of the quantum speed limit
- Quantum Speed Limit for Perfect State Transfer in One Dimension
- Environment assisted speed-up of the field evolution in cavity QED
- Classical-driving-assisted quantum speed-up
- Quantum-speed-limit time for multiqubit open systems
- Margolus-Levitin speed limit across quantum to classical regimes based on trace distance