We address the issue of the validity of linear response theory for a closed quantum system subject to a periodic external driving. Linear response theory (LRT) predicts energy absorption at frequencies of the external driving where the imaginary part of the appropriate response function is different from zero. Here we show that, for a fairly general non-linear many-body system on a lattice subject to an extensive perturbation, this approximation should be expected to be valid only up to a time $t^*$ depending on the strength of the driving, beyond which the true coherent Schr\"odinger evolution departs from the linear response prediction and the system stops absorbing energy form the driving. We exemplify this phenomenon in detail with...
While quantum phase transitions share many characteristics with thermodynamic phase transitions, the...
We consider a quantum system of non-interacting fermions attemperature T, in the framework of linear...
We study the dynamical fidelity F(t) and the Loschmidt echo L(t), following a periodic driving of th...
We address the issue of the validity of linear response theory for a closed quantum system subject t...
The coherent dynamics of many body quantum system is nowadays an experimental reality: by means of t...
The formalism of linear response theory can be extended to encompass physical situations where an op...
We introduce a response theory for open quantum systems within nonequilibrium steady states subject ...
We present theoretical methods for studying quantum mechanical systems subjected to fast periodic dr...
Abstract. The analysis of diffusive energy spreading in quantized chaotic driven systems, leads to a...
Stemming from the time-dependent Schrödinger equation, it is noted that any Hermitian form represent...
© 2017 American Physical Society. We establish some general dynamical properties of quantum many-bod...
The analysis of diffusive energy spreading in quantized chaotic driven systems leads to a universal ...
While quantum phase transitions share many characteristics with thermodynamic phase transitions, the...
We explore the response of many-body localized (MBL) systems to periodic driving of arbitrary amplit...
We develop the continuum mechanics of quantum many-body systems in the linear response regime. The b...
While quantum phase transitions share many characteristics with thermodynamic phase transitions, the...
We consider a quantum system of non-interacting fermions attemperature T, in the framework of linear...
We study the dynamical fidelity F(t) and the Loschmidt echo L(t), following a periodic driving of th...
We address the issue of the validity of linear response theory for a closed quantum system subject t...
The coherent dynamics of many body quantum system is nowadays an experimental reality: by means of t...
The formalism of linear response theory can be extended to encompass physical situations where an op...
We introduce a response theory for open quantum systems within nonequilibrium steady states subject ...
We present theoretical methods for studying quantum mechanical systems subjected to fast periodic dr...
Abstract. The analysis of diffusive energy spreading in quantized chaotic driven systems, leads to a...
Stemming from the time-dependent Schrödinger equation, it is noted that any Hermitian form represent...
© 2017 American Physical Society. We establish some general dynamical properties of quantum many-bod...
The analysis of diffusive energy spreading in quantized chaotic driven systems leads to a universal ...
While quantum phase transitions share many characteristics with thermodynamic phase transitions, the...
We explore the response of many-body localized (MBL) systems to periodic driving of arbitrary amplit...
We develop the continuum mechanics of quantum many-body systems in the linear response regime. The b...
While quantum phase transitions share many characteristics with thermodynamic phase transitions, the...
We consider a quantum system of non-interacting fermions attemperature T, in the framework of linear...
We study the dynamical fidelity F(t) and the Loschmidt echo L(t), following a periodic driving of th...