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Tight binding as a numerical tool for diagonalizing superconducting-circuit Hamiltonians

ORAL

Abstract

We adopt solid-state tight-binding techniques for the spectral analysis of superconducting circuits with more than four degrees of freedom. Such circuits are typically beyond the reach of standard exact diagonalization techniques, owing to the exponential increase in Hilbert space dimension. We demonstrate that for many circuits of interest (including flux qubit, zero-pi circuit and current-mirror circuit) tight-binding states are better suited for approximating the low-energy excitations than charge-basis states. Their use can dramatically lower the Hilbert space dimension required for convergence to the true spectrum which opens up the way for studying circuits with more than 20 nodes.

Presenters

  • Daniel Weiss

    Department of Physics and Astronomy, Northwestern University, Physics, Northwestern University

Authors

  • Daniel Weiss

    Department of Physics and Astronomy, Northwestern University, Physics, Northwestern University

  • Wade DeGottardi

    Northrop Grumman Corporation, Department of Physics and Astronomy, Texas Tech University

  • Jens Koch

    Physics, Northwestern University, Northwestern University, Department of Physics and Astronomy, Northwestern University, Physics and Astronomy, Northwestern University

  • David Ferguson

    Northrop Grumman, Northrop Grumman Corporation, Northrop Grumman - Mission Systems