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Fast logic with slow qubits: microwave-activated controlled-Z gate on low-frequency fluxoniums

Abstract

We demonstrate a controlled-Z gate between capacitively coupled fluxonium qubits with transition frequencies and . The gate is activated by a long pulse at the frequency between non-computational transitions $|10\rangle - |20\rangle|11\rangle - |21\rangle$, during which the qubits complete only and Larmor periods, respectively. The measured gate error of is limited by decoherence in the non-computational subspace, which will likely improve in the next generation devices. Although our qubits are about fifty times slower than transmons, the two-qubit gate is faster than microwave-activated gates on transmons, and the gate error is on par with the lowest reported. Architectural advantages of low-frequency fluxoniums include long qubit coherence time, weak hybridization in the computational subspace, suppressed residual -coupling rate (here ), and absence of either excessive parameter matching or complex pulse shaping requirements.

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