Counterdiabatic Driving for Periodically Driven Systems
Paul Manuel Schindler, Marin Bukov

TL;DR
This paper develops a variational counterdiabatic driving method for Floquet systems, enabling fast, high-fidelity control of periodically driven quantum states beyond adiabatic limits, with applications to various quantum models.
Contribution
It introduces a nonperturbative variational principle for local approximations to the Floquet adiabatic gauge potential, facilitating transitionless driving far from equilibrium.
Findings
Enables fast control of Floquet eigenstates beyond adiabatic regime
Captures nonperturbative photon resonances in driven systems
Provides high-fidelity protocols respecting experimental locality constraints
Abstract
Periodically driven systems have emerged as a useful technique to engineer the properties of quantum systems, and are in the process of being developed into a standard toolbox for quantum simulation. An outstanding challenge that leaves this toolbox incomplete is the manipulation of the states dressed by strong periodic drives. The state-of-the-art in Floquet control is the adiabatic change of parameters. Yet, this requires long protocols conflicting with the limited coherence times in experiments. To achieve fast control of nonequilibrium quantum matter, we generalize the notion of variational counterdiabatic driving away from equilibrium focusing on Floquet systems. We derive a nonperturbative variational principle to find local approximations to the adiabatic gauge potential for the effective Floquet Hamiltonian. It enables transitionless driving of Floquet eigenstates far away from…
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Taxonomy
TopicsQuantum chaos and dynamical systems
