Optimal control theory is a versatile tool that presents a route to significantly improving figures of merit for quantum information tasks. We combine it here with the geometric theory for local equivalence classes of two-qubit operations to derive an optimization algorithm that determines the best entangling two-qubit gate for a given physical setting. We demonstrate the power of this approach for trapped polar molecules and neutral atoms. © 2011 American Physical Society.

Muller, M.M., Reich, D.M., Murphy, M., Yuan, H., Vala, J., Whaley, K.B., et al. (2011). Optimizing entangling quantum gates for physical systems. PHYSICAL REVIEW A, 84(4), 1-8 [10.1103/PhysRevA.84.042315].

Optimizing entangling quantum gates for physical systems

Calarco T.;
2011

Abstract

Optimal control theory is a versatile tool that presents a route to significantly improving figures of merit for quantum information tasks. We combine it here with the geometric theory for local equivalence classes of two-qubit operations to derive an optimization algorithm that determines the best entangling two-qubit gate for a given physical setting. We demonstrate the power of this approach for trapped polar molecules and neutral atoms. © 2011 American Physical Society.
2011
Muller, M.M., Reich, D.M., Murphy, M., Yuan, H., Vala, J., Whaley, K.B., et al. (2011). Optimizing entangling quantum gates for physical systems. PHYSICAL REVIEW A, 84(4), 1-8 [10.1103/PhysRevA.84.042315].
Muller, M. M.; Reich, D. M.; Murphy, M.; Yuan, H.; Vala, J.; Whaley, K. B.; Calarco, T.; Koch, C. P.
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11585/1010142
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