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      Materials in superconducting quantum bits

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      MRS Bulletin
      Cambridge University Press (CUP)

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          Superconducting circuits for quantum information: an outlook.

          The performance of superconducting qubits has improved by several orders of magnitude in the past decade. These circuits benefit from the robustness of superconductivity and the Josephson effect, and at present they have not encountered any hard physical limits. However, building an error-corrected information processor with many such qubits will require solving specific architecture problems that constitute a new field of research. For the first time, physicists will have to master quantum error correction to design and operate complex active systems that are dissipative in nature, yet remain coherent indefinitely. We offer a view on some directions for the field and speculate on its future.
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            Possible new effects in superconductive tunnelling

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              Is Open Access

              Charge insensitive qubit design derived from the Cooper pair box

              Short dephasing times pose one of the main challenges in realizing a quantum computer. Different approaches have been devised to cure this problem for superconducting qubits, a prime example being the operation of such devices at optimal working points, so-called "sweet spots." This latter approach led to significant improvement of \(T_2\) times in Cooper pair box qubits [D. Vion et al., Science 296, 886 (2002)]. Here, we introduce a new type of superconducting qubit called the "transmon." Unlike the charge qubit, the transmon is designed to operate in a regime of significantly increased ratio of Josephson energy and charging energy \(E_J/E_C\). The transmon benefits from the fact that its charge dispersion decreases exponentially with \(E_J/E_C\), while its loss in anharmonicity is described by a weak power law. As a result, we predict a drastic reduction in sensitivity to charge noise relative to the Cooper pair box and an increase in the qubit-photon coupling, while maintaining sufficient anharmonicity for selective qubit control. Our detailed analysis of the full system shows that this gain is not compromised by increased noise in other known channels.
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                Author and article information

                Journal
                applab
                MRS Bulletin
                MRS Bull.
                Cambridge University Press (CUP)
                0883-7694
                1938-1425
                October 2013
                October 14 2013
                October 2013
                : 38
                : 10
                : 816-825
                Article
                10.1557/mrs.2013.229
                67a5a602-0f5e-4803-8ef0-979c1e9fbbb5
                © 2013
                History

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