An efficient Path Integral Monte Carlo procedure is proposed to simulate the behavior of quantum many-body dissipative systems described within the framework of the influence functional. Thermodynamic observables are obtained by Monte Carlo sampling of the partition function after discretization and Fourier transformation in imaginary time of the dynamical variables. The method is tested extensively for model systems, using realistic dissipative kernels. Results are also compared with the predictions of a recently proposed semiclassical approximation, thus testing the reliability of the latter approach for weak quantum coupling. Our numerical method opens the possibility to quantitatively describe real quantum dissipative systems...
We set up a real-time path integral to study the evolution of quantum systems driven in real-time co...
Path integral methods for simulating the structure, thermodynamic properties, and time-dependent res...
We develop a real-time full configuration-interaction quantum Monte Carlo approach to model driven-d...
164 p.Thesis (Ph.D.)--University of Illinois at Urbana-Champaign, 1985.A Monte Carlo method for the ...
Modeling the dynamics of a quantum system connected to the environment is critical for advancing our...
Modeling the dynamics of a quantum system connected to the environment is critical for advancing our...
A hierarchical equations of motion formalism for a quantum dissipation system in a grand canonical b...
The dissipative dynamics of a quantum bistable system coupled to a Ohmic heat bath is investigated b...
In this thesis the dissipative dynamics of bistable quantum systems is studied within the path integ...
The phase diagram of a chain of Josephson junctions with self-capacitance and Ohmic dissipation is s...
10 pages, 6 figures, to be published in Phys. Rev. CIn nuclear fusion and fission, fluctuation and d...
The numerical simulation of quantum many-body systems is an essential instrument in the research on ...
A chain of Josephson junctions shunted by Ohmic resistors undergoes phase transitions at zero temper...
Quantum dissipation involves both energy relaxation and decoherence, leading toward quantum thermal ...
We set up a real-time path integral to study the evolution of quantum systems driven in real-time co...
Path integral methods for simulating the structure, thermodynamic properties, and time-dependent res...
We develop a real-time full configuration-interaction quantum Monte Carlo approach to model driven-d...
164 p.Thesis (Ph.D.)--University of Illinois at Urbana-Champaign, 1985.A Monte Carlo method for the ...
Modeling the dynamics of a quantum system connected to the environment is critical for advancing our...
Modeling the dynamics of a quantum system connected to the environment is critical for advancing our...
A hierarchical equations of motion formalism for a quantum dissipation system in a grand canonical b...
The dissipative dynamics of a quantum bistable system coupled to a Ohmic heat bath is investigated b...
In this thesis the dissipative dynamics of bistable quantum systems is studied within the path integ...
The phase diagram of a chain of Josephson junctions with self-capacitance and Ohmic dissipation is s...
10 pages, 6 figures, to be published in Phys. Rev. CIn nuclear fusion and fission, fluctuation and d...
The numerical simulation of quantum many-body systems is an essential instrument in the research on ...
A chain of Josephson junctions shunted by Ohmic resistors undergoes phase transitions at zero temper...
Quantum dissipation involves both energy relaxation and decoherence, leading toward quantum thermal ...
We set up a real-time path integral to study the evolution of quantum systems driven in real-time co...
Path integral methods for simulating the structure, thermodynamic properties, and time-dependent res...
We develop a real-time full configuration-interaction quantum Monte Carlo approach to model driven-d...