Coupler-Assisted Leakage Reduction for Scalable Quantum Error Correction with Superconducting Qubits
Abstract: Superconducting qubits are a promising platform for building fault-tolerant quantum computers, with recent achievement showing the suppression of logical error with increasing code size. However, leakage into non-computational states, a common issue in practical quantum systems including superconducting circuits, introduces correlated errors that undermine QEC scalability. Here, we propose and demonstrate a leakage reduction scheme utilizing tunable couplers, a widely adopted ingredient in large-scale superconducting quantum processors. Leveraging the strong frequency tunability of the couplers and stray interaction between the couplers and readout resonators, we eliminate state leakage on the couplers, thus suppressing space-correlated errors caused by population propagation among the couplers. Assisted by the couplers, we further reduce leakage to higher qubit levels with high efficiency (98.1%) and low error rate on the computational subspace (0.58%), suppressing time-correlated errors during QEC cycles. The performance of our scheme demonstrates its potential as an indispensable building block for scalable QEC with superconducting qubits.
- S. B. Bravyi and A. Y. Kitaev, Quantum codes on a lattice with boundary, arXiv preprint quant-ph/9811052 (1998).
- B. M. Terhal, Quantum error correction for quantum memories, Reviews of Modern Physics 87, 307 (2015).
- J. Preskill, Quantum computing in the NISQ era and beyond, Quantum 2, 79 (2018).
- A. G. Fowler, Coping with qubit leakage in topological codes, Physical Review A 88, 042308 (2013).
- Google Quantum AI, Exponential suppression of bit or phase errors with cyclic error correction, Nature 595, 383 (2021).
- P. Aliferis and B. M. Terhal, Fault-tolerant quantum computation for local leakage faults, arXiv preprint quant-ph/0511065 (2005).
- M. Suchara, A. W. Cross, and J. M. Gambetta, Leakage suppression in the toric code, in 2015 IEEE International Symposium on Information Theory (ISIT) (IEEE, 2015) pp. 1119–1123.
- Google Quantum AI, Suppressing quantum errors by scaling a surface code logical qubit, Nature 614, 676 (2023).
- J. Ghosh and A. G. Fowler, Leakage-resilient approach to fault-tolerant quantum computing with superconducting elements, Physical Review A 91, 020302 (2015).
- N. C. Brown, M. Newman, and K. R. Brown, Handling leakage with subsystem codes, New Journal of Physics 21, 073055 (2019).
- F. Battistel, B. M. Varbanov, and B. M. Terhal, Hardware-efficient leakage-reduction scheme for quantum error correction with superconducting transmon qubits, PRX Quantum 2, 030314 (2021).
- See Supplemental Material for the system parameters and experimental details .
- J. Chu and F. Yan, Coupler-assisted controlled-phase gate with enhanced adiabaticity, Physical Review Applied 16, 054020 (2021).
Paper Prompts
Sign up for free to create and run prompts on this paper using GPT-5.
Top Community Prompts
Collections
Sign up for free to add this paper to one or more collections.