We derive a microscopic model for dissipative dynamics in a system of mutually interacting qubits coupled to a thermal bath that generalizes the dissipative model of Landau-Lifshitz-Gilbert to the case of anisotropic bath couplings. We show that the dissipation acts to bias the quantum trajectories towards a reduced phase space. This model applies to a system of superconducting flux qubits whose coupling to the environment is necessarily anisotropic. We study the model in the context of the D-Wave computing device and show that the form of environmental coupling in this case produces dynamics that are closely related to several models proposed on phenomenological grounds
We study Landau-Zener-Stückelberg (LZS) interferometry in multilevel systems coupled to an Ohmic qua...
We investigate the quantum dynamics of a multilevel bistable system coupled to a bosonic heat bath b...
Landau-Zener (LZ) tunneling, describing transitions in a two-level system during a sweep through an ...
In this thesis, the effect of dissipation is investigated in driven models of interest for quantum a...
We study the exact solution of the Schrödinger equation for the dissipative dynamics of a qubit, ach...
In majority of the treatments dealing with quantum dissipative systems as mentioned above, the envir...
The dissipative dynamics of a quantum bistable system coupled to a Ohmic heat bath is investigated b...
We study the dissipative dynamics of a biased two-level system (TLS) coupled to a harmonic oscillato...
We calculate the transmission spectra of a flux qubit coupled to a dissipative resonator in the ultr...
A model for a quantum register dissipatively coupled with a bosonic thermal bath is studied. The reg...
We consider a model of environment-induced dissipationless decoherence of a quantum system where the...
We study the entanglement dynamics and relaxation properties of a system of two interacting qubits i...
Dissertation is held on 11.1.2022 12:00 – 16:00 (Zoom), https://aalto.zoom.us/j/64806937304Recent...
We study the dissipative quantum dynamics and the asymptotic behavior of a particle in a bistable po...
Pure quantum mechanics can be formulated as a Hamiltonian system in terms of the Liouville equation ...
We study Landau-Zener-Stückelberg (LZS) interferometry in multilevel systems coupled to an Ohmic qua...
We investigate the quantum dynamics of a multilevel bistable system coupled to a bosonic heat bath b...
Landau-Zener (LZ) tunneling, describing transitions in a two-level system during a sweep through an ...
In this thesis, the effect of dissipation is investigated in driven models of interest for quantum a...
We study the exact solution of the Schrödinger equation for the dissipative dynamics of a qubit, ach...
In majority of the treatments dealing with quantum dissipative systems as mentioned above, the envir...
The dissipative dynamics of a quantum bistable system coupled to a Ohmic heat bath is investigated b...
We study the dissipative dynamics of a biased two-level system (TLS) coupled to a harmonic oscillato...
We calculate the transmission spectra of a flux qubit coupled to a dissipative resonator in the ultr...
A model for a quantum register dissipatively coupled with a bosonic thermal bath is studied. The reg...
We consider a model of environment-induced dissipationless decoherence of a quantum system where the...
We study the entanglement dynamics and relaxation properties of a system of two interacting qubits i...
Dissertation is held on 11.1.2022 12:00 – 16:00 (Zoom), https://aalto.zoom.us/j/64806937304Recent...
We study the dissipative quantum dynamics and the asymptotic behavior of a particle in a bistable po...
Pure quantum mechanics can be formulated as a Hamiltonian system in terms of the Liouville equation ...
We study Landau-Zener-Stückelberg (LZS) interferometry in multilevel systems coupled to an Ohmic qua...
We investigate the quantum dynamics of a multilevel bistable system coupled to a bosonic heat bath b...
Landau-Zener (LZ) tunneling, describing transitions in a two-level system during a sweep through an ...