In this work the role of disorder, interaction and temperature in the physics of quantum non-ergodic systems is discussed. I first review what is meant by thermalization in closed quantum systems, and how ergodicity is violated in the presence of strong disorder, due to the phenomenon of Anderson localization. I explain why localization can be stable against the addition of weak dephasing interactions, and how this leads to the very rich phenomenology associated with many-body localization. I also briefly compare localized systems with their closest classical analogue, which are glasses, and discuss their similarities and differences, the most striking being that in quantum systems genuine non ergodicity can be proven in some cases, while i...
The quantum random energy model provides a mean-field description of the equilibrium spin glass tran...
In this thesis, we have explored the commonalities and connections between different classes of quan...
In the presence of disorder, an interacting closed quantum system can undergo many-body localization...
For a quantum system to be permanently out-of-equilibrium, some non-trivial mechanism must be at pla...
When pushed out of equilibrium, generic interacting quantum systems equilibrate locally and are expe...
Recent theoretical and numerical evidence suggests that localization can survive in disordered many-...
When classical systems fail to explore their entire configurational space, intriguing macroscopic ph...
We study a quantum spin system—adapted from a facilitated spin model for classical glasses—with loca...
The interplay between quenched disorder and interaction effects opens the possibility in a closed qu...
Thermalization is ubiquitous to all physical systems and is an essential assumption for the postulat...
We study a new class of unconventional critical phenomena that is characterized by singularities onl...
In general, the dynamics of many-body quantum systems far-from-equilibrium is highly intricate, and ...
We review the physics of many-body localization in models with incommensurate potentials. In particu...
Isolated, many-body quantum systems, evolving under their intrinsic dynamics, exhibit a multitude of...
We study the ergodic side of the many-body localization transition in its standard model, the disord...
The quantum random energy model provides a mean-field description of the equilibrium spin glass tran...
In this thesis, we have explored the commonalities and connections between different classes of quan...
In the presence of disorder, an interacting closed quantum system can undergo many-body localization...
For a quantum system to be permanently out-of-equilibrium, some non-trivial mechanism must be at pla...
When pushed out of equilibrium, generic interacting quantum systems equilibrate locally and are expe...
Recent theoretical and numerical evidence suggests that localization can survive in disordered many-...
When classical systems fail to explore their entire configurational space, intriguing macroscopic ph...
We study a quantum spin system—adapted from a facilitated spin model for classical glasses—with loca...
The interplay between quenched disorder and interaction effects opens the possibility in a closed qu...
Thermalization is ubiquitous to all physical systems and is an essential assumption for the postulat...
We study a new class of unconventional critical phenomena that is characterized by singularities onl...
In general, the dynamics of many-body quantum systems far-from-equilibrium is highly intricate, and ...
We review the physics of many-body localization in models with incommensurate potentials. In particu...
Isolated, many-body quantum systems, evolving under their intrinsic dynamics, exhibit a multitude of...
We study the ergodic side of the many-body localization transition in its standard model, the disord...
The quantum random energy model provides a mean-field description of the equilibrium spin glass tran...
In this thesis, we have explored the commonalities and connections between different classes of quan...
In the presence of disorder, an interacting closed quantum system can undergo many-body localization...