Creation of quantum error correcting codes in the ultrastrong coupling regime
arXiv:1409.7308 · doi:10.1103/PhysRevB.91.064503
Abstract
We propose to construct large quantum graph codes by means of superconducting circuits working at the ultrastrong coupling regime. In this physical scenario, we are able to create a cluster state between any pair of qubits within a fraction of a nanosecond. To exemplify our proposal, creation of the five-qubit and Steane codes is numerically simulated. We also provide optimal operating conditions with which the graph codes can be realized with state-of-the-art superconducting technologies.
Added a new appendix section
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