Published February 15, 2024 | Version v1
Journal article Open

Hardware-efficient autonomous error correction with linear couplers in superconducting circuits

  • 1. University of Chicago
  • 2. Colorado School of Mines

Description

Large-scale quantum computers will inevitably need quantum error correction (QEC) to protect information against decoherence. Given that the overhead of such error correction is often formidable, autonomous quantum error correction (AQEC) proposals offer a promising near-term alternative. AQEC schemes work by transforming error states into excitations that can be efficiently removed through engineered dissipation. The recently proposed AQEC scheme by Li et al., called the Star code, can autonomously correct or suppress all single qubit error channels using two transmons as encoders with a tunable coupler and two lossy resonators as a cooling source. The Star code requires only two-photon interactions and can be realized with linear coupling elements, avoiding experimentally challenging higher-order terms needed in many other AQEC proposals, but needs carefully selected parameters to achieve quadratic improvements in logical states' lifetimes. Here, we theoretically and numerically demonstrate the optimal parameter choices in the Star code. We further discuss adapting the Star code to other planar superconducting circuits, which offers a scalable alternative to single qubits for incorporation in larger quantum computers or error correction codes.

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PhysRevResearch.6.013171.pdf

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Additional details

Identifiers

DOI
10.1103/physrevresearch.6.013171
Other
oai:uchicago.tind.io:11649

Funding

National Science Foundation
ECCS-1542205
National Science Foundation
PHY-1653820
National Science Foundation
DMR-2011854
Air Force Office of Scientific Research
FA9550-19-1-0399
Army Research Office
W911NF-17-S0001

UChicago Information

Division(s)
Physical Sciences Division, Pritzker School of Molecular Engineering
Department(s)
Physics
Center(s) or Institute(s)
James Franck Institute