Eliminating residual ZZ interactions in a two-qubit system is essential for reducing coherent errors during quantum operations. In a superconducting circuit platform, coupling two transmon qubits via a transmon coupler has been shown to effectively suppress residual ZZ interactions. However, in such systems, perfect cancellation usually requires the qubit-qubit detuning to be smaller than the individual qubit anharmonicities, which exacerbates frequency crowding and microwave crosstalk. To address this limitation, we introduce TFT (Transmon-Fluxonium-Transmon) architecture, wherein two transmon qubits are coupled via a fluxonium qubit. The coupling mediated by the fluxonium eliminates residual ZZ interactions even for transmons detuned larger than their anharmonicities. We experimentally identified zero-ZZ interaction points at qubit-qubit detunings of 409 MHz and 616 MHz from two distinct TFT devices. We then implemented an adiabatic, coupler-flux-biased controlled-Z gate on both devices, achieving CZ gate fidelities of 99.64(6)% and 99.68(8)%.
@article{arxiv.2511.02115,
title = {ZZ-Free Two-Transmon CZ Gate Mediated by a Fluxonium Coupler},
author = {Junyoung An and Helin Zhang and Qi Ding and Leon Ding and Youngkyu Sung and Roni Winik and Junghyun Kim and Ilan T. Rosen and Kate Azar and Renee DePencier Piñero and Jeffrey M. Gertler and Michael Gingras and Bethany M. Niedzielski and Hannah Stickler and Mollie E. Schwartz and Joel Î-j. Wang and Terry P. Orlando and Simon Gustavsson and Max Hays and Jeffrey A. Grover and Kyle Serniak and William D. Oliver},
journal= {arXiv preprint arXiv:2511.02115},
year = {2025}
}