Quantum Superinductor with Tunable Nonlinearity

ORAL

Abstract

We report on the realization of a superinductor, a dissipationless element whose microwave impedance greatly exceeds the resistance quantum R$_{Q}$. The design of the superinductor, implemented as a ladder of nanoscale Josephson junctions, enables tuning of the inductance and its nonlinearity by a weak magnetic field. The Rabi decay time of the superinductor-based qubit exceeds 1 $\mu$s. The high kinetic inductance and strong nonlinearity offer new types of functionality, including the development of qubits protected from both flux and charge noises, fault tolerant quantum computing, and high-impedance isolation for electrical current standards based on Bloch oscillations.

*This work was supported by DARPA (HR0011-09-1-0009), NSF (DMR 1006265), and ARO (W911NF-09-1-0395).

Authors

  • Matthew Bell

    • Rutgers University
  • Ivan Sadovskyy

    • Materials Science Division, Argonne National Laboratory, Argonne, Illinois 60439, USA
    • Rutgers University
  • Lev Ioffe

    • Rutgers University
  • Alexei Kitaev

    • Caltech
  • Michael Gershenson

    • Rutgers University