In this paper, we introduce two simple quantum dynamics methods. One is based on the popular surface-hopping method, and the other is based on rescaling of the propagation on the bath ground-state potential surface. The first method is special, as it avoids specific feedback from the simulated quantum system to the bath and can be applied for precalculated classical trajectories. It is based on the equipartition theorem to determine if hops between different potential energy surfaces are allowed. By comparing with the formally exact Hierarchical Equations Of Motion approach for four model systems we find that the method generally approximates the quantum dynamics toward thermal equilibrium very well. The second method is based on rescaling ...
Based on the works [R1] - [R10], this thesis tackles various aspects of the dynamics of interacting ...
We develop a scheme for engineering genuine thermal states in analog quantum simulation platforms by...
We develop a scheme for engineering genuine thermal states in analog quantum simulation platforms by...
In this paper, we introduce two simple quantum dynamics methods. One is based on the popular surface...
In this paper, we introduce two simple quantum dynamics methods. One is based on the popular surface...
We describe a new method for simulating nonadiabatic dynamics using stochastic trajectories. The met...
We describe a new method for simulating nonadiabatic dynamics using stochastic trajectories. The met...
The study of many photochemical and photophysical problems requires that non-adiabatic effects are t...
A novel quantum methods to deal with typical system-bath dynamical problems is introduced. Subsystem...
We introduce a method “DMT” for approximating density operators of 1D systems that, when combined wi...
We investigate the longstanding problem of thermalization of quantum systems coupled to an environme...
So-called system-bath dynamical problems are ubiquitous in chemical physics. They represent one of t...
In this work, we show how Gibbs or thermal states appear dynamically in closed quantum many-body sys...
An algorithm is presented for the exact solution of the evolution of the density matrix of a mixed q...
So called system-bath problems arise naturally in chemistry and physics, e.g. in gas-surface process...
Based on the works [R1] - [R10], this thesis tackles various aspects of the dynamics of interacting ...
We develop a scheme for engineering genuine thermal states in analog quantum simulation platforms by...
We develop a scheme for engineering genuine thermal states in analog quantum simulation platforms by...
In this paper, we introduce two simple quantum dynamics methods. One is based on the popular surface...
In this paper, we introduce two simple quantum dynamics methods. One is based on the popular surface...
We describe a new method for simulating nonadiabatic dynamics using stochastic trajectories. The met...
We describe a new method for simulating nonadiabatic dynamics using stochastic trajectories. The met...
The study of many photochemical and photophysical problems requires that non-adiabatic effects are t...
A novel quantum methods to deal with typical system-bath dynamical problems is introduced. Subsystem...
We introduce a method “DMT” for approximating density operators of 1D systems that, when combined wi...
We investigate the longstanding problem of thermalization of quantum systems coupled to an environme...
So-called system-bath dynamical problems are ubiquitous in chemical physics. They represent one of t...
In this work, we show how Gibbs or thermal states appear dynamically in closed quantum many-body sys...
An algorithm is presented for the exact solution of the evolution of the density matrix of a mixed q...
So called system-bath problems arise naturally in chemistry and physics, e.g. in gas-surface process...
Based on the works [R1] - [R10], this thesis tackles various aspects of the dynamics of interacting ...
We develop a scheme for engineering genuine thermal states in analog quantum simulation platforms by...
We develop a scheme for engineering genuine thermal states in analog quantum simulation platforms by...