Abstract

A single three-level atom driven by a longitudinal mode of a high-Q cavity is used to implement two-qubit quantum phase gates for the intracavity field. The two qubits are associated with the zero- and one-photon Fock states of each of the two opposite circular polarization states of the field. The three-level atom mediates the conditional phase gate provided the two polarization states and the atom interact in a V-type configuration and the two-photon resonance condition is satisfied. Microwave and optical implementations are discussed with gate fidelities being evaluated against several decoherence mechanisms such as atomic velocity fluctuations or the presence of a weak magnetic field. The use of coherent states for both polarization states is investigated to assess the entanglement capability of the proposed quantum gates.

Authors
R. García-Maraver, J. Mompart, M. Artoni, S. Rebic, K. Eckert, i R. Corbalán
Citation Key
PhysRevA.70.062324
COinS Data

Date Published
2015-04-14 02:46
DOI
10.1103/PhysRevA.70.062324
Pagination
062324
Publisher
American Physical Society
Journal
Phys. Rev. A
URL
http://link.aps.org/doi/10.1103/PhysRevA.70.062324
Volume
70
Year of Publication
2004