Entangling Atoms and Ions in Dissipative Environments
arXiv:quant-ph/0007082 · doi:10.1080/09500340008232183
Abstract
Quantum information processing rests on our ability to manipulate quantum superpositions through coherent unitary transformations, and to establish entanglement between constituent quantum components of the processor. The quantum information processor (a linear ion trap, or a cavity confining the radiation field for example) exists in a dissipative environment. We discuss ways in which entanglement can be established within such dissipative environments. We can even make use of a strong interaction of the system with its environment to produce entanglement in a controlled way.
12 pages, 8 figures, accepted for publication in J. Mod. Opt. (Special Issue)
References in corpus (2)
Cited by in corpus (50)
- Quantum entanglement
- Ultracold atomic gases in optical lattices: mimicking condensed matter physics and beyond
- Entangled states and collective nonclassical effects in two-atom systems
- Entangled light from white noise
- Entanglement in the Dicke model
- Delayed (sudden) birth of entanglement
- Dissipatively driven entanglement of two macroscopic atomic ensembles
- Entangling two atoms via spontaneous emission
- Cold Trapped Ions as Quantum Information Processors
- Quantum Information Processing in Strongly Detuned Optical Cavities
- Noise-assisted preparation of entangled atoms
- Rydberg excitation of trapped cold ions: A detailed case study
- Dissipation-based entanglement via quantum Zeno dynamics and Rydberg antiblockade
- Deterministic creation of stationary entangled states by dissipation
- Dissipative ground-state preparation of a spin chain by a structured environment
- Entanglement induced in spin-1/2 particles by a spin chain near its critical points
- Stationary two-atom entanglement induced by nonclassical two-photon correlations
- Long-range entanglement generation via frequent measurements
- Decoherence-free subspace and disentanglement dynamics for two qubits in a common non-Markovian squeezed reservoir
- Breakdown of the rotating-wave approximation in entanglement description of spin anti-correlated states
- Dissipative spin chains: Implementation with cold atoms and steady-state properties
- Bath-induced collective phenomena on superconducting qubits: synchronization, subradiance, and entanglement generation
- Environment assisted entanglement enhancement
- Dissipative preparation of tripartite singlet state in coupled arrays of cavities via quantum feedback control
- Quantum Computing in a Macroscopic Dark Period
- Selective darkening of degenerate transitions for implementing quantum controlled-NOT gates
- Coherent control in a decoherence-free subspace of a collective multi-level system
- Analysis of radiatively stable entanglement in a system of two dipole-interacting three-level atoms
- Quantum entanglement of nanocantilevers
- Super- and subradiant emission of two-level systems in the near-Dicke limit
- Spontaneously generated atomic entanglement in free space: reinforced by incoherent pumping
- Adiabatic entanglement in two-atom cavity QED
- Robust creation of entangled states of two coupled flux qubits via dynamic control of the transition frequencies
- Robust Entanglement in Atomic Systems via Lambda-Type Processes
- Asymptotic Entanglement and Lindblad Dynamics: a Perturbative Approach
- Three qubits in a symmetric environment: dissipatively generated asymptotic entanglement
- Entanglement and entropy rates in open quantum systems
- Effects of dipolar coupling on an entanglement storage device
- Easy Monitored Entangled States
- Entanglement of a pair of quantum emitters via continuous fluorescence measurements: a tutorial
- Entanglement with phase decoherence
- Decoherence Rates in Large Scale Quantum Computers and Macroscopic Systems
- Entanglement sudden birth and sudden death in a system of two distant atoms coupled via an optical element
- Qubit Entanglement generation by Gaussian non-Markovian dynamics
- Spin entanglement via STM current
- Entangling Nuclear Spins by Dissipation in a Solid-state System
- Optical phase noise engineering via acousto-optic interaction and its interferometric applications
- Spontaneous emission of atomic systems in the presence of incident fields
- Adiabatic cavity QED with pairs of atoms: Atomic entanglement and Quantum teleportation
- Synchronizing the simplest classical system and then quantizing it