The closed-time-path (CTP) formalism is applied, in the framework of open quantum systems, to study the time evolution of the expectation value of the energy-momentum tensor of a scalar field in the presence of real materials. We analyze quantum (Casimir) fluctuations in a fully nonequilibrium scenario, when the scalar field is interacting with the polarization degrees of freedom of matter, described as quantum Brownian particles (harmonic oscillators coupled to a bath) at each point of space. A generalized analysis is done for two types of couplings between the field and the polarization degrees of freedom. On the one hand, we consider a bilinear coupling between the field and the polarization degrees of freedom, and on the other hand, a (...
The vacuum, as described by Quantum Field Theory, is not as empty as classical physics once led us t...
We compute fluctuation-induced (Casimir) forces for classical systems after a temperature quench. Us...
Funding: T.L., A.C., and B.W.L. thank the Defence Science and Technology Laboratory and Direction Gé...
The present work contributes to the study of nonequilibrium aspects of the Casimir forces with the i...
In this work we calculate the closed time path generating functional for the electromagnetic (EM) fi...
In this work we analyze the validity of Lifshitz?s theory for the case of nonequilibrium scenarios f...
We study the time evolution of correlation functions in closed quantum systems for nonequilibrium en...
We adopt an open quantum system approach to study the effects of the back-reaction from a quantum fi...
In this doctoral thesis, we develop and investigate new mathematical tools that are intended to allo...
AbstractWe study the time evolution of correlation functions in closed quantum systems for nonequili...
We discuss extensions of time-dependent mean-field theories such as time-dependent local density app...
An open quantum system is a quantum system that interacts with some environment whose degrees of fre...
In this article we compute the Casimir force between two finite-width mirrors at finite temperature,...
We examine the nonequilibrium dynamics of a self-interacting λφ4 scalar field theory. Using a real t...
By employing the full counting statistics formalism, we characterize the first moment of energy that...
The vacuum, as described by Quantum Field Theory, is not as empty as classical physics once led us t...
We compute fluctuation-induced (Casimir) forces for classical systems after a temperature quench. Us...
Funding: T.L., A.C., and B.W.L. thank the Defence Science and Technology Laboratory and Direction Gé...
The present work contributes to the study of nonequilibrium aspects of the Casimir forces with the i...
In this work we calculate the closed time path generating functional for the electromagnetic (EM) fi...
In this work we analyze the validity of Lifshitz?s theory for the case of nonequilibrium scenarios f...
We study the time evolution of correlation functions in closed quantum systems for nonequilibrium en...
We adopt an open quantum system approach to study the effects of the back-reaction from a quantum fi...
In this doctoral thesis, we develop and investigate new mathematical tools that are intended to allo...
AbstractWe study the time evolution of correlation functions in closed quantum systems for nonequili...
We discuss extensions of time-dependent mean-field theories such as time-dependent local density app...
An open quantum system is a quantum system that interacts with some environment whose degrees of fre...
In this article we compute the Casimir force between two finite-width mirrors at finite temperature,...
We examine the nonequilibrium dynamics of a self-interacting λφ4 scalar field theory. Using a real t...
By employing the full counting statistics formalism, we characterize the first moment of energy that...
The vacuum, as described by Quantum Field Theory, is not as empty as classical physics once led us t...
We compute fluctuation-induced (Casimir) forces for classical systems after a temperature quench. Us...
Funding: T.L., A.C., and B.W.L. thank the Defence Science and Technology Laboratory and Direction Gé...