English

Demonstrating a long-coherence dual-rail erasure qubit using tunable transmons

Quantum Physics 2024-03-21 v3

Abstract

Quantum error correction with erasure qubits promises significant advantages over standard error correction due to favorable thresholds for erasure errors. To realize this advantage in practice requires a qubit for which nearly all errors are such erasure errors, and the ability to check for erasure errors without dephasing the qubit. We demonstrate that a "dual-rail qubit" consisting of a pair of resonantly coupled transmons can form a highly coherent erasure qubit, where transmon T1T_1 errors are converted into erasure errors and residual dephasing is strongly suppressed, leading to millisecond-scale coherence within the qubit subspace. We show that single-qubit gates are limited primarily by erasure errors, with erasure probability perasure=2.19(2)×103p_\text{erasure} = 2.19(2)\times 10^{-3} per gate while the residual errors are 40\sim 40 times lower. We further demonstrate mid-circuit detection of erasure errors while introducing <0.1%< 0.1\% dephasing error per check. Finally, we show that the suppression of transmon noise allows this dual-rail qubit to preserve high coherence over a broad tunable operating range, offering an improved capacity to avoid frequency collisions. This work establishes transmon-based dual-rail qubits as an attractive building block for hardware-efficient quantum error correction.

Keywords

Cite

@article{arxiv.2307.08737,
  title  = {Demonstrating a long-coherence dual-rail erasure qubit using tunable transmons},
  author = {Harry Levine and Arbel Haim and Jimmy S. C. Hung and Nasser Alidoust and Mahmoud Kalaee and Laura DeLorenzo and E. Alex Wollack and Patricio Arrangoiz-Arriola and Amirhossein Khalajhedayati and Rohan Sanil and Hesam Moradinejad and Yotam Vaknin and Aleksander Kubica and David Hover and Shahriar Aghaeimeibodi and Joshua Ari Alcid and Christopher Baek and James Barnett and Kaustubh Bawdekar and Przemyslaw Bienias and Hugh Carson and Cliff Chen and Li Chen and Harut Chinkezian and Eric M. Chisholm and Andrew Clifford and R. Cosmic and Nicole Crisosto and Alexander M. Dalzell and Erik Davis and J. Mitch D'Ewart and Sandra Diez and Nathan D'Souza and Philipp T. Dumitrescu and Essam Elkhouly and Michael Fang and Yawen Fang and Steven T. Flammia and Matthew J. Fling and Gabriel Garcia and M. Kabeer Gharzai and Alexey V. Gorshkov and Mason J. Gray and Sebastian Grimberg and Arne L. Grimsmo and Connor T. Hann and Yuan He and Steven Heidel and Sean Howell and Matthew Hunt and Joseph K. Iverson and Ignace Jarrige and Liang Jiang and William M. Jones and Rassul Karabalin and Peter J. Karalekas and Andrew J. Keller and Davide Lasi and Menyoung Lee and Victor Ly and Gregory S. MacCabe and Neha Mahuli and Guillaume Marcaud and Matthew H. Matheny and Sam McArdle and Gavin McCabe and Gabe Merton and Cody Miles and Ashley Milsted and Anurag Mishra and Lorenzo Moncelsi and Mahdi Naghiloo and Kyungjoo Noh and Eric Oblepias and Gerson Ortuno and John Clai Owens and Jason Pagdilao and Ashley Panduro and J. -P. Paquette and Rishi N. Patel and Gregory A. Peairs and David J. Perello and Eric C. Peterson and Sophia Ponte and Harald Putterman and Gil Refael and Philip Reinhold and Rachel Resnick and Omar A. Reyna and Roberto Rodriguez and Jefferson Rose and Alex H. Rubin and Marc Runyan and Colm A. Ryan and Abdulrahman Sahmoud and Thomas Scaffidi and Bhavik Shah and Salome Siavoshi and Prasahnt Sivarajah and Trenton Skogland and Chun-Ju Su and Loren J. Swenson and Jared Sylvia and Stephanie M. Teo and Astrid Tomada and Giacomo Torlai and Mark Wistrom and Kailing Zhang and Ido Zuk and Aashish A. Clerk and Fernando G. S. L. Brandão and Alex Retzker and Oskar Painter},
  journal= {arXiv preprint arXiv:2307.08737},
  year   = {2024}
}

Comments

9+13 pages, 16 figures