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. 2021 Oct;598(7880):281-286.
doi: 10.1038/s41586-021-03928-y. Epub 2021 Oct 4.

Fault-tolerant control of an error-corrected qubit

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Fault-tolerant control of an error-corrected qubit

Laird Egan et al. Nature. 2021 Oct.

Abstract

Quantum error correction protects fragile quantum information by encoding it into a larger quantum system1,2. These extra degrees of freedom enable the detection and correction of errors, but also increase the control complexity of the encoded logical qubit. Fault-tolerant circuits contain the spread of errors while controlling the logical qubit, and are essential for realizing error suppression in practice3-6. Although fault-tolerant design works in principle, it has not previously been demonstrated in an error-corrected physical system with native noise characteristics. Here we experimentally demonstrate fault-tolerant circuits for the preparation, measurement, rotation and stabilizer measurement of a Bacon-Shor logical qubit using 13 trapped ion qubits. When we compare these fault-tolerant protocols to non-fault-tolerant protocols, we see significant reductions in the error rates of the logical primitives in the presence of noise. The result of fault-tolerant design is an average state preparation and measurement error of 0.6 per cent and a Clifford gate error of 0.3 per cent after offline error correction. In addition, we prepare magic states with fidelities that exceed the distillation threshold7, demonstrating all of the key single-qubit ingredients required for universal fault-tolerant control. These results demonstrate that fault-tolerant circuits enable highly accurate logical primitives in current quantum systems. With improved two-qubit gates and the use of intermediate measurements, a stabilized logical qubit can be achieved.

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References

    1. Shor, P. W. Scheme for reducing decoherence in quantum computer memory. Phys. Rev. A 52, R2493 (1995). - PubMed - DOI
    1. Knill, E. & Laflamme, R. Theory of quantum error-correcting codes. Phys. Rev. A 55, 900–911 (1997). - DOI
    1. Shor, P. W. Fault-tolerant quantum computation. In Proc. 37th Conference on Foundations of Computer Science (1996).
    1. Knill, E., Laflamme, R. & Zurek, W. Threshold accuracy for quantum computation. Preprint at https://arxiv.org/abs/quant-ph/9610011 (1996).
    1. Gottesman, D. Theory of fault-tolerant quantum computation. Phys. Rev. A 57, 127–137 (1998). - DOI

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