English

Optimal control of quantum gates and suppression of decoherence in a system of interacting two-level particles

Quantum Physics 2009-12-23 v2

Abstract

Methods of optimal control are applied to a model system of interacting two-level particles (e.g., spin-half atomic nuclei or electrons or two-level atoms) to produce high-fidelity quantum gates while simultaneously negating the detrimental effect of decoherence. One set of particles functions as the quantum information processor, whose evolution is controlled by a time-dependent external field. The other particles are not directly controlled and serve as an effective environment, coupling to which is the source of decoherence. The control objective is to generate target one- and two-qubit unitary gates in the presence of strong environmentally-induced decoherence and under physically motivated restrictions on the control field. The quantum-gate fidelity, expressed in terms of a novel state-independent distance measure, is maximized with respect to the control field using combined genetic and gradient algorithms. The resulting high-fidelity gates demonstrate the feasibility of precisely guiding the quantum evolution via optimal control, even when the system complexity is exacerbated by environmental coupling. It is found that the gate duration has an important effect on the control mechanism and resulting fidelity. An analysis of the sensitivity of the gate performance to random variations in the system parameters reveals a significant degree of robustness attained by the optimal control solutions.

Keywords

Cite

@article{arxiv.quant-ph/0702147,
  title  = {Optimal control of quantum gates and suppression of decoherence in a system of interacting two-level particles},
  author = {Matthew Grace and Constantin Brif and Herschel Rabitz and Ian A. Walmsley and Robert L. Kosut and Daniel A. Lidar},
  journal= {arXiv preprint arXiv:quant-ph/0702147},
  year   = {2009}
}

Comments

IOP LaTeX, 10 figures, 29 pages; Accepted for publication in the Special Issue of the Journal of Physics B on Dynamical Control of Entanglement and Decoherence by Field-Matter Interactions