报告摘要:Nanostructured superconductors with Josephson junctions behave under proper conditions as artificial atoms. They are currently one of the main candidates for the implementation of a quantum computer and a testbed for fundamental studies in quantum mechanics. Among the various types of superconducting quantum systems, flux qubits are distinguished through a combination of large level anharnmonicity and strong coupling to electromagnetic fields. Therefore, they are an ideal system to study strong interaction effects between a two-level system and the electromagnetic field.
In the first part of the talk, I will discuss the interaction between a flux qubit and a strong classical field. The dynamics is well described by Floquet states, which are quasistationary solutions of the Schrodinger equation with a time-periodic Hamiltonian. We directly observe Floquet states of the artificial atom driven with short resonant pulses and a field amplitude which reaches more than twice the atomic frequency. The dynamics of the driven system depends on the pulse rise fall/times, in agreement with the adiabatic conditions in the Floquet picture. These results have applications to the optimal control of quantum systems. I will discuss how fast and high-fidelity single-qubit unitaries can be implemented in the strong driving regime.
In the second part of the talk, I will present our recent work on the investigation of strong coupling between a flux qubit and a one-dimensional waveguide, in a regime where the coupling is comparable to and even exceeds the atomic frequency. |