Published December 2024 | Version v1
Dissertation Open

Autonomous Quantum Error Correction with Superconducting Qubits

Creators

  • 1. University of Chicago

Contributors

Description

Large-scale quantum computers will inevitably need quantum error correction to protect information against decoherence. Traditional error correction typically requires many qubits, along with high-efficiency error syndrome measurement and real-time feedback. Autonomous quantum error correction instead uses steady-state bath engineering to perform the correction in a hardware-efficient manner. In this thesis, we develop a new autonomous quantum error correction scheme, the Star Code, that actively corrects single-photon loss and passively suppresses low-frequency dephasing, and we demonstrate an important experimental step towards its full implementation with transmons. Compared to uncorrected encoding, improvements are experimentally witnessed for the logical zero, one, and superposition states. Our results show the potential of implementing hardware-efficient autonomous quantum error correction to enhance the reliability of a transmon-based quantum information processor.

Files

PhD_Dissertation-compressed.pdf

Files (23.3 MB)

Name Size Download all
Dissertation
md5:fd06f22806e8e324f7ef6500e7f49ac4
23.3 MB Preview Download

Additional details

Identifiers

Other
oai:uchicago.tind.io:13898

UChicago Information

Division(s)
Physical Sciences Division
Department(s)
Physics