Control-limited perfect state transfer, quantum stochastic resonance and many-body entangling gate in imperfect qubit registers
arXiv:0801.4930 · doi:10.1103/PhysRevA.77.062337
Abstract
We propose a protocol for perfect quantum state transfer that is resilient to a broad class of realistic experimental imperfections, including noise sources that could be modelled either as independent Markovian baths or as certain forms of spatially correlated environments. We highlight interesting connections between the fidelity of state transfer and quantum stochastic resonance effects. The scheme is flexible enough to act as an effective entangling gate for the generation of genuine multipartite entanglement in a control-limited setting. Possible experimental implementations using superconducting qubits are also briefly discussed.
10 pages, 9 figures, RevTeX4
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- State Transfer in Highly Connected Networks and a Quantum Babinet Principle
- Bypassing state initialization in Hamiltonian tomography on spin-chains