Quantum computation with the Jaynes-Cummings model
arXiv:0808.3027 · doi:10.1143/PTP.126.369
Abstract
In this paper, we propose a method for building a two-qubit gate with the Jaynes-Cummings model (JCM). In our scheme, we construct a qubit from a pair of optical paths where a photon is running. Generating Knill, Laflamme and Milburn's nonlinear sign-shift gate by the JCM, we construct the conditional sign-flip gate, which works with small error probability in principle. We also discuss two experimental setups for realizing our scheme. In the first experimental setup, we make use of coherent lights to examine whether or not our scheme works. In the second experimental setup, an optical loop circuit made out of the polarizing beam splitter and the Pockels cell takes an important role in the cavity.
4 pages, 2 eps figures, latex2e; v2: Figure 1 and its caption are modified; v3: one new section is added; v4: experimental setups are completely rewritten; v5: minor corrections; v6: two references added; v7: 18 peges, 11 eps figures, PTPTeX, LaTeX2e, Section 4 is rewritten
Cited by in corpus (10)
- What can we learn from the dynamics of entanglement and quantum discord in the Tavis-Cummings model?
- Analytic approach to dynamics of the resonant and off-resonant Jaynes-Cummings systems with cavity losses
- Unity-Efficiency Parametric Down-Conversion via Amplitude Amplification
- Quantum revivals of non Rabi type in Jaynes-Cummings model
- Formation of spectral triplets induced by parity deformation in a quantum dot-cavity system
- Dark states of atomic ensembles
- Decoherence of the quantum logic gate implemented with the Jaynes-Cummings model: A semiclassical approach
- Quantum gates on asynchronous atomic excitations
- On the physical limit of quantum computing
- The complexity of a quantum system and the accuracy of its description