Coherent Josephson qubit suitable for scalable quantum integrated circuits
Physical review letters, 2013•APS
We demonstrate a planar, tunable superconducting qubit with energy relaxation times up to
44 μ s. This is achieved by using a geometry designed to both minimize radiative loss and
reduce coupling to materials-related defects. At these levels of coherence, we find a fine
structure in the qubit energy lifetime as a function of frequency, indicating the presence of a
sparse population of incoherent, weakly coupled two-level defects. We elucidate this defect
physics by experimentally varying the geometry and by a model analysis. Our “Xmon” qubit …
44 μ s. This is achieved by using a geometry designed to both minimize radiative loss and
reduce coupling to materials-related defects. At these levels of coherence, we find a fine
structure in the qubit energy lifetime as a function of frequency, indicating the presence of a
sparse population of incoherent, weakly coupled two-level defects. We elucidate this defect
physics by experimentally varying the geometry and by a model analysis. Our “Xmon” qubit …
We demonstrate a planar, tunable superconducting qubit with energy relaxation times up to . This is achieved by using a geometry designed to both minimize radiative loss and reduce coupling to materials-related defects. At these levels of coherence, we find a fine structure in the qubit energy lifetime as a function of frequency, indicating the presence of a sparse population of incoherent, weakly coupled two-level defects. We elucidate this defect physics by experimentally varying the geometry and by a model analysis. Our “Xmon” qubit combines facile fabrication, straightforward connectivity, fast control, and long coherence, opening a viable route to constructing a chip-based quantum computer.
American Physical Society
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