Optimal control of superconducting gmon qubits using Pontryagin's minimum principle: preparing a maximally entangled state with singular bang-bang protocols
arXiv:1704.01423 · doi:10.1103/PhysRevA.97.062343
Abstract
We apply the theory of optimal control to the dynamics of two "gmon" qubits, with the goal of preparing a desired entangled ground state from an initial unentangled one. Given an initial state, a target state, and a Hamiltonian with a set of permissible controls, can we reach the target state with coherent quantum evolution and, in that case, what is the minimum time required? The adiabatic theorem provides a far from optimal solution in the presence of a spectral gap. Optimal control yields the fastest possible way of reaching the target state and helps identify unreachable states. In the context of a simple quantum system, we provide examples of both reachable and unreachable target ground states and show that the unreachability is due to a symmetry. We find the optimal protocol in the reachable case using three different approaches: (i) a brute-force numerical minimization (ii) an efficient numerical minimization using the bang-bang ansatz expected from the Pontryagin minimum principle, and (iii) direct solution of the Pontryagin boundary value problem, which yields an analytical understanding of the numerically obtained optimal protocols. Interestingly, our system provides an example of singular control, where the Pontryagin theorem does not guarantee bang-bang protocols. Nevertheless, all three approaches give the same bang-bang protocol.
8 pages, 6 figures
References in corpus (16)
- Optimizing Variational Quantum Algorithms using Pontryagin's Minimum Principle
- Robust optimal quantum gates for Josephson charge qubits
- Optimal quantum control of Bose Einstein condensates in magnetic microtraps
- High-Fidelity Single-Shot Toffoli Gate via Quantum Control
- Training A Quantum Optimizer
- Charting the circuit QED design landscape using optimal control theory
- Shortcuts to nonabelian braiding
- The Quantum Speed Limit of Optimal Controlled Phasegates for Trapped Neutral Atoms
- Optimizing for an arbitrary perfect entangler: I. Functionals
- Optimal Control of Majorana Zero Modes
- Optimizing for an arbitrary perfect entangler. II. Application
- Optimal control for unitary preparation of many-body states: application to Luttinger liquids
- Cooling through optimal control of quantum evolution
- Stochastic optimization of a cold atom experiment using a genetic algorithm
- Squeezing and robustness of frictionless cooling strategies
- Optimal diabatic dynamics of Majorana-based quantum gates
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