Published March 2007 | Version v1
Journal article

Quantum-information processing with circuit quantum electrodynamics

  • 1. Departement de Physique et Regroupement Quebecois sur les Materiaux de Pointe, Universite de Sherbrooke, Sherbrooke, Quebec J1K 2R1 (Canada)
  • 2. Departments of Applied Physics and Physics, Yale University, New Haven, Connecticut 06520 (United States)
  • 3. Department of Physics, ETH Zurich, CH-8093 Zuerich (Switzerland)

Description

We theoretically study single and two-qubit dynamics in the circuit QED architecture. We focus on the current experimental design [Wallraff et al., Nature (London) 431, 162 (2004); Schuster et al., ibid. 445, 515 (2007)] in which superconducting charge qubits are capacitively coupled to a single high-Q superconducting coplanar resonator. In this system, logical gates are realized by driving the resonator with microwave fields. Advantages of this architecture are that it allows for multiqubit gates between non-nearest qubits and for the realization of gates in parallel, opening the possibility of fault-tolerant quantum computation with superconducting circuits. In this paper, we focus on one- and two-qubit gates that do not require moving away from the charge-degeneracy ''sweet spot'. This is advantageous as it helps to increase the qubit dephasing time and does not require modification of the original circuit QED. However, these gates can, in some cases, be slower than those that do not use this constraint. Five types of two-qubit gates are discussed, these include gates based on virtual photons, real excitation of the resonator, and a gate based on the geometric phase. We also point out the importance of selection rules when working at the charge degeneracy point

Additional details

Publishing Information

Journal Title
Physical Review. A
Journal Volume
75
Journal Issue
3
Journal Page Range
p. 032329-032329.21
ISSN
1050-2947
CODEN
PLRAAN

Optional Information

Notes
(c) 2007 The American Physical Society