Robust control of decoherence in realistic one-qubit quantum gates
arXiv:quant-ph/0202141 · doi:10.1088/0305-4470/36/8/314
Abstract
We present an open loop (bang-bang) scheme to control decoherence in a generic one-qubit quantum gate and implement it in a realistic simulation. The system is consistently described within the spin-boson model, with interactions accounting for both adiabatic and thermal decoherence. The external control is included from the beginning in the Hamiltonian as an independent interaction term. After tracing out the environment modes, reduced equations are obtained for the two-level system in which the effects of both decoherence and external control appear explicitly. The controls are determined exactly from the condition to eliminate decoherence, i.e. to restore unitarity. Numerical simulations show excellent performance and robustness of the proposed control scheme.
21 pages, 8 figures, VIth International Conference on Quantum Communication, Measurement and Computing (Boston, 2002)
References in corpus (2)
Cited by in corpus (11)
- Quantum Logic Operations Using Single Photons and the Zeno Effect
- Quantum Computing Using Single Photons and the Zeno Effect
- Sliding mode control of quantum systems
- Quantum optimal control theory and dynamic coupling in the spin-boson model
- Decoherence Control in Open Quantum System via Classical Feedback
- Non-Markovianity and coherence of a moving qubit inside a leaky cavity
- Quantum Internal Model Principle: Decoherence Control
- Control of decoherence in open quantum systems using feedback
- Targeting qubit states using open-loop control
- Pulse Control of Decoherence with Population Decay
- Observation of the Quantum Zeno Effect on a NISQ Device