Inverse Engineering Control in Open Quantum Systems
arXiv:1307.0383 · doi:10.1103/PhysRevA.88.022333
Abstract
We propose a scheme for inverse engineering control in open quantum systems. Starting from an undetermined time evolution operator, a time-dependent Hamiltonian is derived in order to guide the system to attain an arbitrary target state at a predefined time. We analyze the fidelity of our control protocol under noise with respect to the stochastic fluctuation of the linear parameters of the Hamiltonian during the time evolution. For a special family of Hamiltonians for two-level systems, we show that the control evolution of the system under noise can be categorized into two standard decohering processes: dephasing and depolarization, for both Markovian and non- Markovian conditions. In particular, we illustrate our formalism by analysing the robustness of the engineered target state.
5 pages, 2 figures
References in corpus (7)
- Exact Results on Dynamical Decoupling by -Pulses in Quantum Information Processes
- High fidelity quantum gates via dynamical decoupling
- Non-Markovian Quantum Trajectories Versus Master Equations: Finite Temperature Heat Bath
- Non-Markovian Relaxation of a Three-Level System: Quantum Trajectory Approach
- Concatenated Control Sequences based on Optimized Dynamic Decoupling
- Master Equation and Control of an Open Quantum System with Leakage
- From Zeno to anti-Zeno: decoherence-control dependence on the quantum statistics of the bath
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