Orthogonally-Driven Superconducting Qubit in Circuit QED
M. J. Storcz, M. Mariantoni, H. Christ, A. Emmert, A. Marx, W. D. Oliver, R. Gross, F. K. Wilhelm, E. Solano
Abstract
We consider a superconducting charge qubit coupled to distinct orthogonal electromagnetic field modes belonging to a coplanar wave guide and a microstrip transmission line resonators. This architecture allows the simultaneous implementation of a Jaynes-Cummings and anti-Jaynes-Cummings dynamics, a resonant method for generating mesoscopic qubit-field superpositions and for field-state reconstruction. Furthermore, we utilize this setup to propose a field measurement technique that is, in principle, robust to qubit dephasing and field relaxation due to a fast pre-measurement.
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