Controllable coupling between flux qubits
arXiv:cond-mat/0507496 · doi:10.1103/PhysRevLett.96.067003
Abstract
We propose an experimentally realizable method to control the coupling between two flux qubits. In our proposal, the bias fluxes are always fixed for these two inductively-coupled qubits. The detuning of these two qubits can be initially chosen to be sufficiently large, so that their initial interbit coupling is almost negligible. When a time-dependent magnetic flux (TDMF) is applied to one of the qubits, a well-chosen frequency of the TDMF can be used to compensate the initial detuning and to couple two qubits. This proposed method avoids fast changes of either qubit frequencies or the amplitudes of the bias magnetic fluxes through the qubit loops, and also offers a remarkable way to implement any logic gate as well as tomographically measure flux qubit states.
2 figures, 4 pages
References in corpus (11)
- Superconducting Circuits and Quantum Information
- Experimental Quantum State Tomography of Optical Fields and Ultrafast Statistical Sampling
- Optical selection rules and phase-dependent adiabatic state control in a superconducting quantum circuit
- Dephasing of a superconducting qubit induced by photon noise
- Spectroscopy on two coupled flux qubits
- Protocol for universal gates in optimally biased superconducting qubits
- Entangling flux qubits with a bipolar dynamic inductance
- Tomographic measurements on superconducting qubit states
- Direct Josephson coupling between superconducting flux qubits
- Quantum computation with Josephson-qubits by using a current-biased information bus
- Spectroscopy of Three-Particle Entanglement in a Macroscopic Superconducting Circuit
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