Rabi Oscillations in a Large Josephson-Junction Qubit
John M. Martinis, Sae Woo Nam, José Aumentado, C. Urbina
Abstract
John M. Martinis, Sae Woo Nam, José Aumentado, C. Urbina
Abstract
We have designed and operated a circuit based on a large-area current-biased Josephson junction whose two lowest energy quantum levels are used to implement a solid-state qubit. The circuit allows measurement of the qubit states with a fidelity of 85% while providing sufficient decoupling from external sources of relaxation and decoherence to allow coherent manipulation of the qubit state, as demonstrated by the observation of Rabi oscillations. This qubit circuit is the basis of a scalable quantum computer.
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We have designed and operated a circuit based on a large-area current-biased Josephson junction whose two lowest energy quantum levels are used to implement a solid-state qubit. The circuit allows measurement of the qubit states with a fidelity of 85% while providing sufficient decoupling from external sources of relaxation and decoherence to allow coherent manipulation of the qubit state, as demonstrated by the observation of Rabi oscillations. This qubit circuit is the basis of a scalable quantum computer.
Key concepts: Phase qubit, Qubit, Charge qubit, Flux qubit, Rabi cycle, Josephson effect, Physics, Quantum decoherence