The role of mixed states in topological quantum matter is less known than that of pure quantum states. Generalisations of topological phases appearing in pure states have received attention in the literature only quite recently. In particular, it is still unclear whether the generalisation of the Aharonov-Anandan phase for mixed states due to Uhlmann plays any physical role in the behaviour of the quantum systems. We analyse, from a general viewpoint, topological phases of mixed states and the robustness of their invariance. In particular, we analyse the role of these phases in the behaviour of systems with periodic symmetry and their evolution under the influence of an environment preserving its crystalline symmetries
A new definition and interpretation of the geometric phase for mixed state cyclic unitary evolution ...
In this short note, I review some recent results about gapped ground state phases of quantu...
Matter exists in many different phases, for example in solid state or in liquid phase. There are als...
We introduce and study the dynamical probes of band-structure topology in the postquench time evolut...
Topological states of matter are a novel family of phases that elude the conventional Landau paradig...
Quantum phenomena related to geometric and topological phases are investigated. The first results pr...
Continuous phase transitions between disordered and ordered phase states are accompanied by spontane...
The discovery of topological phases of quantum matter has brought about a new paradigm in the unders...
Mixed states typically arise when quantum systems interact with the outside world. Evolution of open...
The discovery of topological phases of quantum matter has brought about a new paradigm in the unders...
The classification of topological phases of matter is fundamental to understand and characterize the...
The classification of topological phases of matter is fundamental to understand and characterize the...
In recent experiments, time-dependent periodic fields are used to create exotic topological phases o...
Abstract. We use tools from the theory of dynamical systems with symmetries to stratify Uhlmann’s st...
In this short note, I review some recent results about gapped ground state phases of quantu...
A new definition and interpretation of the geometric phase for mixed state cyclic unitary evolution ...
In this short note, I review some recent results about gapped ground state phases of quantu...
Matter exists in many different phases, for example in solid state or in liquid phase. There are als...
We introduce and study the dynamical probes of band-structure topology in the postquench time evolut...
Topological states of matter are a novel family of phases that elude the conventional Landau paradig...
Quantum phenomena related to geometric and topological phases are investigated. The first results pr...
Continuous phase transitions between disordered and ordered phase states are accompanied by spontane...
The discovery of topological phases of quantum matter has brought about a new paradigm in the unders...
Mixed states typically arise when quantum systems interact with the outside world. Evolution of open...
The discovery of topological phases of quantum matter has brought about a new paradigm in the unders...
The classification of topological phases of matter is fundamental to understand and characterize the...
The classification of topological phases of matter is fundamental to understand and characterize the...
In recent experiments, time-dependent periodic fields are used to create exotic topological phases o...
Abstract. We use tools from the theory of dynamical systems with symmetries to stratify Uhlmann’s st...
In this short note, I review some recent results about gapped ground state phases of quantu...
A new definition and interpretation of the geometric phase for mixed state cyclic unitary evolution ...
In this short note, I review some recent results about gapped ground state phases of quantu...
Matter exists in many different phases, for example in solid state or in liquid phase. There are als...