High-Coherence Hybrid Superconducting Qubit
Matthias Steffen, Shwetank Kumar, David Peter Divincenzo, John Rozen, George Keefe, Mary Beth Rothwell, M. B. Ketchen
Abstract
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Matthias Steffen, Shwetank Kumar, David Peter Divincenzo, John Rozen, George Keefe, Mary Beth Rothwell, M. B. Ketchen
Abstract
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We report quantum coherence measurements of a superconducting qubit whose design is a hybrid of several existing types. Excellent coherence times are found: T2∼T1∼1.5 μs. The topology of the qubit is that of a traditional three-junction flux qubit, but it has a large shunting capacitance, and the ratio of the junction critical currents is chosen so that the qubit potential has a single-well form. The qubit has a sizable nonlinearity, but its sign is reversed compared with most other popular qubit designs. The qubit is read out dispersively using a high-Q resonator in a λ/2 configuration.
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We report quantum coherence measurements of a superconducting qubit whose design is a hybrid of several existing types. Excellent coherence times are found: T2∼T1∼1.5 μs. The topology of the qubit is that of a traditional three-junction flux qubit, but it has a large shunting capacitance, and the ratio of the junction critical currents is chosen so that the qubit potential has a single-well form. The qubit has a sizable nonlinearity, but its sign is reversed compared with most other popular qubit designs. The qubit is read out dispersively using a high-Q resonator in a λ/2 configuration.
Key concepts: Qubit, Flux qubit, Charge qubit, Phase qubit, Physics, Quantum mechanics, Superconductivity, Quantum decoherence