Experimental demonstration of continuous quantum error correction
arXiv:2107.11398 · doi:10.1038/s41467-022-29906-0
Abstract
The storage and processing of quantum information are susceptible to external noise, resulting in computational errors that are inherently continuous A powerful method to suppress these effects is to use quantum error correction. Typically, quantum error correction is executed in discrete rounds where errors are digitized and detected by projective multi-qubit parity measurements. These stabilizer measurements are traditionally realized with entangling gates and projective measurement on ancillary qubits to complete a round of error correction. However, their gate structure makes them vulnerable to errors occurring at specific times in the code and errors on the ancilla qubits. Here we use direct parity measurements to implement a continuous quantum bit-flip correction code in a resource-efficient manner, eliminating entangling gates, ancilla qubits, and their associated errors. The continuous measurements are monitored by an FPGA controller that actively corrects errors as they are detected. Using this method, we achieve an average bit-flip detection efficiency of up to 91%. Furthermore, we use the protocol to increase the relaxation time of the protected logical qubit by a factor of 2.7 over the relaxation times of the bare comprising qubits. Our results showcase resource-efficient stabilizer measurements in a multi-qubit architecture and demonstrate how continuous error correction codes can address challenges in realizing a fault-tolerant system.
12 pages, 7 figures
References in corpus (8)
- Amplification and squeezing of quantum noise with a tunable Josephson metamaterial
- Quantum feedback control of a superconducting qubit: Persistent Rabi oscillations
- Qubit-photon interactions in a cavity: Measurement induced dephasing and number splitting
- Exponential suppression of bit or phase flip errors with repetitive error correction
- Characterization and Reduction of Capacitive Loss Induced by Sub-Micron Josephson Junction Fabrication in Superconducting Qubits
- Parity meter for charge qubits: an efficient quantum entangler
- Physical model of continuous two-qubit parity measurement in a cavity-QED network
- Entanglement genesis under continuous parity measurement
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