High-Order Noise Filtering in Nontrivial Quantum Logic Gates

Todd Green, Hermann Uys, and Michael J. Biercuk
Phys. Rev. Lett. 109, 020501 – Published 9 July 2012
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Abstract

Treating the effects of a time-dependent classical dephasing environment during quantum logic operations poses a theoretical challenge, as the application of noncommuting control operations gives rise to both dephasing and depolarization errors that must be accounted for in order to understand total average error rates. We develop a treatment based on effective Hamiltonian theory that allows us to efficiently model the effect of classical noise on nontrivial single-bit quantum logic operations composed of arbitrary control sequences. We present a general method to calculate the ensemble-averaged entanglement fidelity to arbitrary order in terms of noise filter functions, and provide explicit expressions to fourth order in the noise strength. In the weak noise limit we derive explicit filter functions for a broad class of piecewise-constant control sequences, and use them to study the performance of dynamically corrected gates, yielding good agreement with brute-force numerics.

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  • Received 31 October 2011

DOI:https://doi.org/10.1103/PhysRevLett.109.020501

© 2012 American Physical Society

Authors & Affiliations

Todd Green1, Hermann Uys2, and Michael J. Biercuk1,*

  • 1Centre for Engineered Quantum Systems, School of Physics, The University of Sydney, New South Wales 2006 Australia
  • 2National Laser Centre, Council for Scientific and Industrial Research, Pretoria, South Africa

  • *michael.biercuk@sydney.edu.au

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Issue

Vol. 109, Iss. 2 — 13 July 2012

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