Tunable coupler to fully decouple superconducting qubits

ORAL

Abstract

Enhancing the capabilities of superconducting quantum hardware, requires higher gate fidelities and lower crosstalk, particularly in larger scale devices, in which qubits are coupled to multiple neighbors. Progress towards both of these objectives would highly benefit from the ability to fully control all interactions between pairs of qubits. Here we propose a new coupler model that allows to fully decouple dispersively detuned Transmon qubits from each other, i.e. ZZ-crosstalk is completely suppressed while maintaining a maximal localization of the qubits' computational basis states. We further reason that, for a dispersively detuned Transmon system, this can only be the case if the anharmonicity of the coupler is positive at the idling point. A simulation of a 40 ns CZ-gate for a lumped element model suggests that achievable process infidelity can be pushed below the limit imposed by state-of-the-art coherence times of Transmon qubits. On the other hand, idle gates between qubits are no longer limited by parasitic interactions. We show that our scheme can be applied to large integrated qubit grids, where it allows to fully isolate a pair of qubits, that undergoes a gate operation, from the rest of the chip while simultaneously pushing the fidelity of gates to the limit set by the coherence time of the individual qubits.

* This work has received funding from the German Federal Ministry of Education and Research via the funding program quantum technologies - from basic research to the market under contract numbers 13N15684 "GeQCoS" and 13N16182 "MUNIQC-SC". It is also part of the Munich Quantum Valley, which is supported by the Bavarian state government with funds from the Hightech Agenda Bayern Plus.

Publication: L. Heunisch, C. Eichler, M. J. Hartmann. Tunable Coupler to fully decouple superconducting qubits, arXiv:2306.17007

Presenters

  • Lukas Heunisch

    Friedrich-Alexander-University Erlangen-Nuremberg (FAU)

Authors

  • Lukas Heunisch

    Friedrich-Alexander-University Erlangen-Nuremberg (FAU)

  • Christopher Eichler

    Friedrich-Alexander University Erlangen-Nuremberg (FAU)

  • Michael J Hartmann

    Friedrich Alexander University Erlangen-Nuremberg, Max Planck Institute for the Science of Light, Friedrich-Alexander University Erlangen-Nuremberg (FAU)