Title :
Sampled-Data Design for Robust Control of a Single Qubit
Author :
Daoyi Dong ; Petersen, Ian R. ; Rabitz, Hersch
Author_Institution :
Sch. of Eng. & Inf. Technol., Univ. of New South Wales, Canberra, ACT, Australia
Abstract :
This technical note presents a sampled-data approach to the robust control of a single qubit (quantum bit). The required robustness is defined using a sliding mode domain and the control law is designed offline and then utilized online with a single qubit having bounded uncertainties. Two classes of uncertainties are considered involving the system Hamiltonian and the coupling strength of the system-environment interaction. Four cases are analyzed in detail including without decoherence, with amplitude damping decoherence, phase damping decoherence and depolarizing decoherence. Sampling periods are specifically designed for these cases to guarantee the required robustness. Two sufficient conditions are presented for the design of a unitary control for the cases without decoherence and with amplitude damping decoherence. The proposed approach has potential applications in quantum error-correction and in constructing robust quantum gates.
Keywords :
control system synthesis; damping; discrete systems; error correction; quantum gates; robust control; sampled data systems; sampling methods; variable structure systems; Hamiltonian system; amplitude damping decoherence; bounded uncertainties; coupling strength; offline control law design; phase damping decoherence; quantum bit; quantum error-correction; robust quantum gates; robust single qubit control; sampled-data approach; sampled-data design; sampling periods; sliding mode domain; sufficient conditions; system-environment interaction; unitary control; Couplings; Damping; Process control; Robust control; Robustness; Time measurement; Uncertainty; Open quantum system; quantum control; qubit; robust decoherence control; sampled-data design;
Journal_Title :
Automatic Control, IEEE Transactions on
DOI :
10.1109/TAC.2013.2256017