Physical Review A · 2009 · 28 citations · 44 references
Stirap SequenceQuantum ScienceEngineeringQuantum ComputingPhysicsQuantum Optimization AlgorithmNatural SciencesRovibrational Controlled-not GatesQuantum SimulationMolecular BiologyQuantum AlgorithmOptimal Control TheoryComputational ChemistryRealistic Molecular SystemsQuantum ChemistryBiophysicsMolecular Computing
Implementation of quantum controlled-NOT (CNOT) gates in realistic molecular systems is studied using stimulated Raman adiabatic passage (STIRAP) techniques optimized in the time domain by genetic algorithms or coupled with optimal control theory. In the first case, with an adiabatic solution (a series of STIRAP processes) as starting point, we optimize in the time domain different parameters of the pulses to obtain a high fidelity in two realistic cases under consideration. A two-qubit CNOT gate constructed from different assignments in rovibrational states is considered in diatomic (NaCs) or polyatomic $({\text{SCCl}}_{2})$ molecules. The difficulty of encoding logical states in pure rotational states with STIRAP processes is illustrated. In such circumstances, the gate can be implemented by optimal control theory and the STIRAP sequence can then be used as an interesting trial field. We discuss the relative merits of the two methods for rovibrational computing (structure of the control field, duration of the control, and efficiency of the optimization).
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Quantum Computation with Trapped Polar Molecules
David DeMille · Physical Review Letters · 2002 · 1.3K citations · Full text
Quantum Science, Novel Physical Realization, Quantum Computing +15
Cold and ultracold molecules: science, technology and applications
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