High-fidelity quantum memory using nitrogen-vacancy center ensemble for hybrid quantum computation
arXiv:1106.2909 · doi:10.1103/PhysRevA.84.010301
Abstract
We study a hybrid quantum computing system using nitrogen-vacancy center ensemble (NVE) as quantum memory, current-biased Josephson junction (CBJJ) superconducting qubit fabricated in a transmission line resonator (TLR) as quantum computing processor and the microwave photons in TLR as quantum data bus. The storage process is seriously treated by considering all kinds of decoherence mechanisms. Such a hybrid quantum device can also be used to create multi-qubit W states of NVEs through a common CBJJ. The experimental feasibility and challenge are justified using currently available technology.
4 pages, 4 figures, accepted for PRA rapid communication
References in corpus (7)
- State tomography of capacitively shunted phase qubits with high fidelity
- Reversible state transfer between superconducting qubits and atomic ensembles
- A superconducting qubit with Purcell protection and tunable coupling
- Quantum two-level systems in Josephson junctions as naturally formed qubits
- Molecular Dipolar Crystals as High Fidelity Quantum Memory for Hybrid Quantum Computing
- Quantum computing with a single molecular ensemble and a Cooper pair box
- Induced Entanglement Enhanced by Quantum Criticality