English

Proposal for entangling gates on fluxonium qubits via a two-photon transition

Quantum Physics 2021-06-24 v2 Mesoscale and Nanoscale Physics

Abstract

We propose a family of microwave-activated entangling gates on two capacitively coupled fluxonium qubits. A microwave pulse applied to either qubit at a frequency near the half-frequency of the 0011|00\rangle - |11\rangle transition induces two-photon Rabi oscillations with a negligible leakage outside the computational subspace, owing to the strong anharmonicity of fluxoniums. By adjusting the drive frequency, amplitude, and duration, we obtain the gate family that is locally equivalent to the fermionic-simulation gates such as SWAP\sqrt{\rm SWAP}-like and controlled-phase gates. The gate error can be tuned below 10410^{-4} for a pulse duration under 100 ns without excessive circuit parameter matching. Given that the fluxonium coherence time can exceed 1 ms, our gate scheme is promising for large-scale quantum processors.

Keywords

Cite

@article{arxiv.2011.10011,
  title  = {Proposal for entangling gates on fluxonium qubits via a two-photon transition},
  author = {Konstantin N. Nesterov and Quentin Ficheux and Vladimir E. Manucharyan and Maxim G. Vavilov},
  journal= {arXiv preprint arXiv:2011.10011},
  year   = {2021}
}

Comments

15 pages, 6 figures; published version