English

Understanding photonic quantum-logic gates: The road to fault tolerance

Quantum Physics 2008-08-07 v1

Abstract

Fault-tolerant quantum computing requires gates which function correctly despite the presence of errors, and are scalable if the error probability-per-gate is below a threshold value. To date, no method has been described for calculating this probability from measurements on a gate. Here we introduce a technique enabling quantitative benchmarking of quantum-logic gates against fault-tolerance thresholds for any architecture. We demonstrate our technique experimentally using a photonic entangling-gate. The relationship between experimental errors and their quantum logic effect is non-trivial: revealing this relationship requires a comprehensive theoretical model of the quantum-logic gate. We show the first such model for any architecture, and find multi-photon emission--a small effect previously regarded as secondary to mode-mismatch--to be the dominant source of logic error. We show that reducing this will move photonic quantum computing to within striking distance of fault-tolerance.

Keywords

Cite

@article{arxiv.0808.0794,
  title  = {Understanding photonic quantum-logic gates: The road to fault tolerance},
  author = {Till J. Weinhold and Alexei Gilchrist and Kevin J. Resch and Andrew C. Doherty and Jeremy L. O'Brien and Geoffrey J. Pryde and Andrew G. White},
  journal= {arXiv preprint arXiv:0808.0794},
  year   = {2008}
}

Comments

Article (6 pages, 4 figures, 1 table) + Supplementary material (3 pages, 1 table)