Non-Hermitian Hamiltonians, which describe a wide range of dissipative systems, and higher-order topological phases, which exhibit novel boundary states on corners and hinges, comprise two areas of intense current research. Here we investigate systems where these frontiers merge and formulate a generalized biorthogonal bulk-boundary correspondence, which dictates the appearance of boundary modes at parameter values that are, in general, radically different from those that mark phase transitions in periodic systems. By analyzing the interplay between corner/hinge, edge/surface, and bulk degrees of freedom we establish that the non-Hermitian extensions of higher-order topological phases exhibit an even richer phenomenology than their Hermitia...
Recently, the search for topological states of matter has turned to non-Hermitian systems, which exh...
Genuinely non-Hermitian topological phases can be realized in open systems with sufficiently strong ...
While Hermiticity lies at the heart of quantum mechanics, recent experimental advances in controllin...
In topological insulators, the bulk-boundary correspondence describes the relationship between the b...
In topological insulators, the bulk-boundary correspondence describes the relationship between the b...
In topological insulators, the bulk-boundary correspondence describes the relationship between the b...
Non-Hermitian systems exhibit striking exceptions from the paradigmatic bulk-boundary correspondence...
Topological phases of Hermitian systems are known to exhibit intriguing properties such as the prese...
Topological edge modes are excitations that are localized at the materials' edges and yet are charac...
Non-Hermitian (NH) Hamiltonians can be used to describe dissipative systems, notably including syste...
The past decades have witnessed an explosion of interest in topological materials, and a lot of math...
Both theoretical and experimental studies of topological phases in non-Hermitian systems have made a...
The bulk-boundary correspondence (BBC), i.e. the direct relation between bulk topological invariants...
Non-Hermitian systems can exhibit extraordinary sensitivity to boundary conditions, where the locali...
The hallmark of symmetry-protected topological phases is the existence of anomalous boundary states,...
Recently, the search for topological states of matter has turned to non-Hermitian systems, which exh...
Genuinely non-Hermitian topological phases can be realized in open systems with sufficiently strong ...
While Hermiticity lies at the heart of quantum mechanics, recent experimental advances in controllin...
In topological insulators, the bulk-boundary correspondence describes the relationship between the b...
In topological insulators, the bulk-boundary correspondence describes the relationship between the b...
In topological insulators, the bulk-boundary correspondence describes the relationship between the b...
Non-Hermitian systems exhibit striking exceptions from the paradigmatic bulk-boundary correspondence...
Topological phases of Hermitian systems are known to exhibit intriguing properties such as the prese...
Topological edge modes are excitations that are localized at the materials' edges and yet are charac...
Non-Hermitian (NH) Hamiltonians can be used to describe dissipative systems, notably including syste...
The past decades have witnessed an explosion of interest in topological materials, and a lot of math...
Both theoretical and experimental studies of topological phases in non-Hermitian systems have made a...
The bulk-boundary correspondence (BBC), i.e. the direct relation between bulk topological invariants...
Non-Hermitian systems can exhibit extraordinary sensitivity to boundary conditions, where the locali...
The hallmark of symmetry-protected topological phases is the existence of anomalous boundary states,...
Recently, the search for topological states of matter has turned to non-Hermitian systems, which exh...
Genuinely non-Hermitian topological phases can be realized in open systems with sufficiently strong ...
While Hermiticity lies at the heart of quantum mechanics, recent experimental advances in controllin...