Dynamical Symmetry and Quantum Information Processing with Electromagnetically Induced Transparency
arXiv:quant-ph/0410131 · doi:10.1016/j.physleta.2006.02.031
Abstract
We study in detail the interesting dynamical symmetry and its applications in various atomic systems with electromagnetically induced transparency (EIT) in this paper. By discovering the symmetrical Lie group of various atomic systems, such as single-atomic-ensemble composed of complex -level atoms, and -atomic-ensemble and even multi-atomic-ensemble system composed of of -level atoms etc., one can obtain the general definition of dark-state polaritons (DSPs), and then the dark-states of these different systems. The symmetrical properties of the multi-level system and multi-atomic-ensemble system are shown to be dependent on some characteristic parameters of the EIT system. Furthermore, a controllable scheme to generate quantum entanglement between lights or atoms via quantized DSPs theory is discussed and the robustness of this scheme is analyzed by confirming the validity of adiabatic passage conditions in this paper.
14pages, 2figures, Phys. Lett. A, In print
References in corpus (8)
- Storage and retrieval of single photons transmitted between remote quantum memories
- Quantum State Transfer Between Matter and Light
- Slow light in degenerate Fermi gases
- Generation of atom-photon entangled states in atomic Bose-Einstein condensate via electromagnetically induced transparency
- Solitons Formed by Dark-State Polaritons in Electromagnetic Induced Transparency
- Correlated Quantum Memory: Manipulating Atomic Entanglement via Electromagnetically Induced Transparency
- Entanglement storage in atomic ensembles
- Technique of quantum state transfer for a double Lambda atomic beam