Selective coupling of superconducting qubits via tunable stripline cavity
arXiv:cond-mat/0608209 · doi:10.1103/PhysRevB.74.224506
Abstract
We theoretically investigate selective coupling of superconducting charge qubits mediated by a superconducting stripline cavity with a tunable resonance frequency. The frequency control is provided by a flux biased dc-SQUID attached to the cavity. Selective entanglement of the qubit states is achieved by sweeping the cavity frequency through the qubit-cavity resonances. The circuit is scalable, and allows to keep the qubits at their optimal points with respect to decoherence during the whole operation. We derive an effective quantum Hamiltonian for the basic, two-qubit-cavity system, and analyze appropriate circuit parameters. We present a protocol for performing Bell inequality measurements, and discuss a composite pulse sequence generating a universal control-phase gate.
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- Interqubit coupling mediated by a high-excitation-energy quantum object
- Dissipation in circuit quantum electrodynamics: lasing and cooling of a low-frequency oscillator
- Protecting entanglement in superconducting qubits
- Spectrum of Andreev Bound States in a Molecule Embedded Inside a Microwave-Excited Superconducting Junction
- Implementation of the three-qubit phase-flip error correction code with superconducting qubits