We study the unitary time evolution of a simple quantum Hamiltonian describing two harmonic oscillators coupled via a three-level system. The latter acts as an engine transferring energy from one oscillator to the other and is driven in a cyclic manner by time-dependent external fields. The S-matrix of the cycle is obtained in analytic form. The total number of quanta contained in the system is a conserved quantity. As a consequence the spectrum of the S-matrix is purely discrete and the evolution of the system is quasi-periodic.status: publishe
We design faster-than-adiabatic state transfers (switching of quantum numbers) in time-dependent cou...
Vibrational energy relaxation is studied for a model system with two different ligands separated by ...
We consider the possibility that both classical statistical mechanical systems as well as quantum me...
We study the unitary time evolution of a simple quantum Hamiltonian describing two harmonic oscillat...
Stemming from the time-dependent Schrödinger equation, it is noted that any Hermitian form represent...
It is proven that the energy of a quantum mechanical harmonic oscillator with a generically time-dep...
Light harvesting complexes have naturally developed structures such that energy transfer processes o...
In this article, we formulate the study of the unitary time evolution of systems consisting of an in...
Abstract. We study a microscopic Hamiltonian model describing an N-level quantum system S coupled to...
The Schroedinger equation is used to describe a quantum system evolving in time by a non-Hermitian H...
Basic physical mechanisms that are complicated can often be studied with the aid of simple quantum m...
We propose, formulate and analyze novel quantum systems and behavioral phases in which the momentary...
We present theoretical methods for studying quantum mechanical systems subjected to fast periodic dr...
| openaire: EC/H2020/862644/EU//QUARTETWe study the time evolution of an ideal system composed of tw...
The problem of the interaction of a quantum system having discrete states, with a classical oscillat...
We design faster-than-adiabatic state transfers (switching of quantum numbers) in time-dependent cou...
Vibrational energy relaxation is studied for a model system with two different ligands separated by ...
We consider the possibility that both classical statistical mechanical systems as well as quantum me...
We study the unitary time evolution of a simple quantum Hamiltonian describing two harmonic oscillat...
Stemming from the time-dependent Schrödinger equation, it is noted that any Hermitian form represent...
It is proven that the energy of a quantum mechanical harmonic oscillator with a generically time-dep...
Light harvesting complexes have naturally developed structures such that energy transfer processes o...
In this article, we formulate the study of the unitary time evolution of systems consisting of an in...
Abstract. We study a microscopic Hamiltonian model describing an N-level quantum system S coupled to...
The Schroedinger equation is used to describe a quantum system evolving in time by a non-Hermitian H...
Basic physical mechanisms that are complicated can often be studied with the aid of simple quantum m...
We propose, formulate and analyze novel quantum systems and behavioral phases in which the momentary...
We present theoretical methods for studying quantum mechanical systems subjected to fast periodic dr...
| openaire: EC/H2020/862644/EU//QUARTETWe study the time evolution of an ideal system composed of tw...
The problem of the interaction of a quantum system having discrete states, with a classical oscillat...
We design faster-than-adiabatic state transfers (switching of quantum numbers) in time-dependent cou...
Vibrational energy relaxation is studied for a model system with two different ligands separated by ...
We consider the possibility that both classical statistical mechanical systems as well as quantum me...