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May 1, 2002The Journal of Chemical Physics247 citationsOpen Access

Design of strongly modulating pulses to implement precise effective Hamiltonians for quantum information processing

EFEvan M. FortunatoMPMarco A. PraviaNBNicolas Boulant

Key Points

  • The research aims to enhance coherent control in quantum systems through precise Hamiltonian knowledge.
  • Utilized numerical search methods to design pulsed irradiation schemes for multiqubit systems.
  • Applied liquid-state nuclear magnetic resonance techniques for experimental validation.
  • Performed simulations to assess the fidelity of gate operations in a three-qubit system.
  • Achieved gate fidelities of 0.999 on average, reaching up to 0.9997 in optimal sequences.
  • Overlaps of up to 0.99 were observed in density matrices against expected states, confirming implementation quality.
  • Pulses were substantially shorter than low power selective pulses, effectively reducing relaxation effects.

Abstract

We describe a method for improving coherent control through the use of detailed knowledge of the system’s Hamiltonian. Precise unitary transformations were obtained by strongly modulating the system’s dynamics to average out unwanted evolution. With the aid of numerical search methods, pulsed irradiation schemes are obtained that perform accurate, arbitrary, selective gates on multiqubit systems. Compared to low power selective pulses, which cannot average out all unwanted evolution, these pulses are substantially shorter in time, thereby reducing the effects of relaxation. Liquid-state nuclear magnetic resonance techniques on homonuclear spin systems are used to demonstrate the accuracy of these gates both in simulation and experiment. Simulations of the coherent evolution of a three-qubit system show that the control sequences faithfully implement the unitary operations, typically yielding gate fidelities on the order of 0.999 and, for some sequences, up to 0.9997. The experimentally determined density matrices resulting from the application of different control sequences on a three-spin system have overlaps of up to 0.99 with the expected states, confirming the quality of the experimental implementation.

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Cite This Study

Fortunato et al. (2002) studied this question.

synapsesocial.com/papers/6a0f59b28090e499da5fb510https://doi.org/10.1063/1.1465412
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