We have integrated single and coupled superconducting transmon qubits into flip-chip modules. Each module consists of two chips -- one quantum chip and one control chip -- that are bump-bonded together. We demonstrate time-averaged coherence times exceeding 90μs, single-qubit gate fidelities exceeding 99.9%, and two-qubit gate fidelities above 98.6%. We also present device design methods and discuss the sensitivity of device parameters to variation in interchip spacing. Notably, the additional flip-chip fabrication steps do not degrade the qubit performance compared to our baseline state-of-the-art in single-chip, planar circuits. This integration technique can be extended to the realisation of quantum processors accommodating hundreds of qubits in one module as it offers adequate input/output wiring access to all qubits and couplers.
@article{arxiv.2112.02717,
title = {Building Blocks of a Flip-Chip Integrated Superconducting Quantum Processor},
author = {Sandoko Kosen and Hang-Xi Li and Marcus Rommel and Daryoush Shiri and Christopher Warren and Leif Grönberg and Jaakko Salonen and Tahereh Abad and Janka Biznárová and Marco Caputo and Liangyu Chen and Kestutis Grigoras and Göran Johansson and Anton Frisk Kockum and Christian Križan and Daniel Pérez Lozano and Graham Norris and Amr Osman and Jorge Fernández-Pendás and Alberto Ronzani and Anita Fadavi Roudsari and Slawomir Simbierowicz and Giovanna Tancredi and Andreas Wallraff and Christopher Eichler and Joonas Govenius and Jonas Bylander},
journal= {arXiv preprint arXiv:2112.02717},
year = {2022}
}
Comments
33 pages, 12 figures, includes supplementary materials, updated with further calculations on participation ratio and Purcell limit