Entanglement generation in spatially separated systems using quantum walk
arXiv:1005.3785 · doi:10.4236/jqis.2012.22004
Abstract
We present a novel scheme to generate entanglement between two spatially separated systems. The scheme makes use of spatial entanglement generated by a single-particle quantum walk which is used to entangle two spatially separated, not necessarily correlated, systems. This scheme can be used to entangle any two systems which can interact with the spatial modes entangled during the quantum walk evolution. A notable feature is that we can control the quantum walk dynamics and its ability to localize leads to a substantial control and improvement in the entanglement output.
9 pages, 5 figures
References in corpus (12)
- Quantum Walk in Position Space with Single Optically Trapped Atoms
- Photons Walking the Line: A quantum walk with adjustable coin operations
- Realization of quantum walks with negligible decoherence in waveguide lattices
- Realization of a quantum walk with one and two trapped ions
- Quantum walk of a trapped ion in phase space
- Discrete single-photon quantum walks with tunable decoherence
- Optimizing the discrete time quantum walk using a SU(2) coin
- Disordered quantum walk-induced localization of a Bose-Einstein condensate
- Implementing the one-dimensional quantum (Hadamard) walk using a Bose-Einstein Condensate
- Ultracold molecules: vehicles to scalable quantum information processing
- Discrete-Time Quantum Walk - Dynamics and Applications
- Entanglement preparation using symmetric multiports
Cited by in corpus (5)
- Quantum walks: a comprehensive review
- Non-Markovian channel from the reduced dynamics of coin in quantum walk
- Quantum walk on distinguishable non-interacting many-particles and indistinguishable two-particle
- Accelerated quantum walk, two-particle entanglement generation and localization
- Quantum walk-based protocol for secure communication between any two directly connected nodes on a network