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      Phase-slip flux qubits

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      New Journal of Physics
      IOP Publishing

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          Coherent quantum dynamics of a superconducting flux qubit.

          We have observed coherent time evolution between two quantum states of a superconducting flux qubit comprising three Josephson junctions in a loop. The superposition of the two states carrying opposite macroscopic persistent currents is manipulated by resonant microwave pulses. Readout by means of switching-event measurement with an attached superconducting quantum interference device revealed quantum-state oscillations with high fidelity. Under strong microwave driving, it was possible to induce hundreds of coherent oscillations. Pulsed operations on this first sample yielded a relaxation time of 900 nanoseconds and a free-induction dephasing time of 20 nanoseconds. These results are promising for future solid-state quantum computing.
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            Quantum suppression of superconductivity in ultrathin nanowires

            It is of fundamental importance to establish whether there is a limit to how thin a superconducting wire can be, while retaining its superconducting character--and if there is a limit, to determine what sets it. This issue may also be of practical importance in defining the limit to miniaturization of superconducting electronic circuits. At high temperatures, the resistance of linear superconductors is caused by excitations called thermally activated phase slips. Quantum tunnelling of phase slips is another possible source of resistance that is still being debated. It has been theoretically predicted that such quantum phase slips can destroy superconductivity in very narrow wires. Here we report resistance measurements on ultrathin ( Rq, which we explain in terms of proliferation of quantum phase slips and a corresponding localization of Cooper pairs.
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              Evidence for macroscopic quantum tunneling in one-dimensional superconductors.

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                Author and article information

                Journal
                New Journal of Physics
                New J. Phys.
                IOP Publishing
                1367-2630
                January 01 2005
                October 11 2005
                : 7
                : 219
                Article
                10.1088/1367-2630/7/1/219
                8b1ce0af-e4c0-4e48-9793-62627c7b8712
                © 2005
                History

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