Systems of strongly interacting dipoles offer an attractive platform to study many-body localized phases, owing to their long coherence times and strong interactions. We explore conditions under which such localized phases persist in the presence of power-law interactions and supplement our analytic treatment with numerical evidence of localized states in one dimension. We propose and analyze several experimental systems that can be used to observe and probe such states, including ultracold polar molecules and solid-state magnetic spin impurities.Physic
The recent experimental realization of cold polar molecules in the rotational and vibrational ground...
Abstract Ultracold polar molecules in multilayered systems have been experimentally realized very re...
Quantum spin chains provide some of the mathematically most accessible examples of quantum many-body...
Recent theoretical and numerical evidence suggests that localization can survive in disordered many-...
We chart out the ground state phase diagram and demonstrate the presence of a many-body localized (M...
Using a combination of results from exact mappings and from mean-field theory we explore the phase d...
Many-body localization (MBL) has emerged as a powerful paradigm for understanding nonequilibrium qua...
International audienceA number of experimental platforms for quantum simulations of disordered quant...
We review recent developments in the study of out-of-equilibrium topological states of matter in iso...
There has been a surge of interest in studying truly nonequilibrium quantum many-body phenomena, mot...
We re-examine attempts to study the many-body localization transition using measures that are physic...
We propose a method for detecting many-body localization (MBL) in disordered spin systems. The metho...
When pushed out of equilibrium, generic interacting quantum systems equilibrate locally and are expe...
We study the localization problem of one-dimensional interacting spinless fermions in an i...
Many-body localization (MBL) features are studied here for a large spin chain model with long-range ...
The recent experimental realization of cold polar molecules in the rotational and vibrational ground...
Abstract Ultracold polar molecules in multilayered systems have been experimentally realized very re...
Quantum spin chains provide some of the mathematically most accessible examples of quantum many-body...
Recent theoretical and numerical evidence suggests that localization can survive in disordered many-...
We chart out the ground state phase diagram and demonstrate the presence of a many-body localized (M...
Using a combination of results from exact mappings and from mean-field theory we explore the phase d...
Many-body localization (MBL) has emerged as a powerful paradigm for understanding nonequilibrium qua...
International audienceA number of experimental platforms for quantum simulations of disordered quant...
We review recent developments in the study of out-of-equilibrium topological states of matter in iso...
There has been a surge of interest in studying truly nonequilibrium quantum many-body phenomena, mot...
We re-examine attempts to study the many-body localization transition using measures that are physic...
We propose a method for detecting many-body localization (MBL) in disordered spin systems. The metho...
When pushed out of equilibrium, generic interacting quantum systems equilibrate locally and are expe...
We study the localization problem of one-dimensional interacting spinless fermions in an i...
Many-body localization (MBL) features are studied here for a large spin chain model with long-range ...
The recent experimental realization of cold polar molecules in the rotational and vibrational ground...
Abstract Ultracold polar molecules in multilayered systems have been experimentally realized very re...
Quantum spin chains provide some of the mathematically most accessible examples of quantum many-body...