The concept of geometrical frustration has led to rich insights into condensed matter physics, especially as a mechanism to produce exotic low-energy states of matter. Here we show that frustration provides a natural vehicle to generate models exhibiting anomalous thermalization of various types within high-energy states. We consider three classes of nonintegrable frustrated spin models: (I) systems with local conserved quantities where the number of symmetry sectors grows exponentially with the system size but more slowly than the Hilbert space dimension, (II) systems with exact eigenstates that are singlet coverings, and (III) flatband systems hosting magnon crystals. We argue that several one- and two-dimensional models from class ...
Frustration, or the competition between interacting components of a network, is often responsible fo...
We review the physics of many-body localization in models with incommensurate potentials. In particu...
The thermodynamic description of many-particle systems rests on the assumption of ergodicity, the ab...
The concept of geometrical frustration has led to rich insights into condensed matter physics, espec...
Nonequilibrium properties of quantum materials present many intriguing properties, among them atherm...
In this work we investigate themes related to many-body systems in which multiple ground states are ...
Although most quantum systems thermalize locally on short timescales independent of initial conditio...
Isolated, many-body quantum systems, evolving under their intrinsic dynamics, exhibit a multitude of...
Previous studies reveal a crucial effect of symmetries on the properties of a single particle moving...
When pushed out of equilibrium, generic interacting quantum systems equilibrate locally and are expe...
In general, the dynamics of many-body quantum systems far-from-equilibrium is highly intricate, and ...
Many-body localized (MBL) systems lie outside the framework of statistical mechanics, as they fail t...
The thermodynamic description of many-particle systems rests on the assumption of ergodicity, the ab...
Frustration, or the competition between interacting components of a network, is often responsible fo...
The thermodynamic description of many-particle systems rests on the assumption of ergodicity, the ab...
Frustration, or the competition between interacting components of a network, is often responsible fo...
We review the physics of many-body localization in models with incommensurate potentials. In particu...
The thermodynamic description of many-particle systems rests on the assumption of ergodicity, the ab...
The concept of geometrical frustration has led to rich insights into condensed matter physics, espec...
Nonequilibrium properties of quantum materials present many intriguing properties, among them atherm...
In this work we investigate themes related to many-body systems in which multiple ground states are ...
Although most quantum systems thermalize locally on short timescales independent of initial conditio...
Isolated, many-body quantum systems, evolving under their intrinsic dynamics, exhibit a multitude of...
Previous studies reveal a crucial effect of symmetries on the properties of a single particle moving...
When pushed out of equilibrium, generic interacting quantum systems equilibrate locally and are expe...
In general, the dynamics of many-body quantum systems far-from-equilibrium is highly intricate, and ...
Many-body localized (MBL) systems lie outside the framework of statistical mechanics, as they fail t...
The thermodynamic description of many-particle systems rests on the assumption of ergodicity, the ab...
Frustration, or the competition between interacting components of a network, is often responsible fo...
The thermodynamic description of many-particle systems rests on the assumption of ergodicity, the ab...
Frustration, or the competition between interacting components of a network, is often responsible fo...
We review the physics of many-body localization in models with incommensurate potentials. In particu...
The thermodynamic description of many-particle systems rests on the assumption of ergodicity, the ab...