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Non-Hermitian bulk-boundary correspondence in quantum dynamics

TLDR
In this paper, the non-Hermitian bulk-boundary correspondence was shown to hold for a wide range of open topological systems with effective non-Bloch Hamiltonians.
Abstract
Bulk–boundary correspondence, a guiding principle in topological matter, relates robust edge states to bulk topological invariants. Its validity, however, has so far been established only in closed systems. Recent theoretical studies indicate that this principle requires fundamental revisions for a wide range of open systems with effective non-Hermitian Hamiltonians. Therein, the intriguing localization of nominal bulk states at boundaries, known as the non-Hermitian skin effect, suggests a non-Bloch band theory in which non-Bloch topological invariants are defined in generalized Brillouin zones, leading to a general bulk–boundary correspondence beyond the conventional framework. Here, we experimentally observe this fundamental non-Hermitian bulk–boundary correspondence in discrete-time non-unitary quantum-walk dynamics of single photons. We demonstrate pronounced photon localizations near boundaries even in the absence of topological edge states, thus confirming the non-Hermitian skin effect. Facilitated by our experimental scheme of edge-state reconstruction, we directly measure topological edge states, which are in excellent agreement with the non-Bloch topological invariants. Our work unequivocally establishes the non-Hermitian bulk–boundary correspondence as a general principle underlying non-Hermitian topological systems and paves the way for a complete understanding of topological matter in open systems. Measurements of non-Hermitian photon dynamics show boundary-localized bulk eigenstates given by the non-Hermitian skin effect. A fundamental revision of the bulk–boundary correspondence in open systems is required to understand the underlying physics.

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Citations
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Journal ArticleDOI

Exceptional topology of non-Hermitian systems

TL;DR: In this paper, the role of topology in non-Hermitian (NH) systems and its far-reaching physical consequences observable in a range of dissipative settings are reviewed.
Journal ArticleDOI

Observation of non-Hermitian topology and its bulk-edge correspondence in an active mechanical metamaterial.

TL;DR: In this paper, the authors identify and observe a form of bulk-edge correspondence for a particular non-Hermitian topological phase and show that a change in the bulk topological invariant leads to a change of topological edge-mode localization together with peculiar purely non-hermitian properties.
Journal ArticleDOI

Non-Hermitian Bulk-Boundary Correspondence and Auxiliary Generalized Brillouin Zone Theory

TL;DR: In this article, the generalized Brillouin zone (GBZ) is calculated analytically in one-dimensional non-Hermitian systems, which helps us to understand the non-hermitian bulk-boundary correspondence.
Journal ArticleDOI

Non-Hermitian Skin Modes Induced by On-Site Dissipations and Chiral Tunneling Effect

TL;DR: A no-go theorem for the emergence of skin modes is revealed and paves the way for searching for quantum systems with skin modes and studying their novel physical responses.
References
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Journal ArticleDOI

Non-Hermitian Boundary Modes and Topology

TL;DR: This work exposes a direct relation between the presence of a point gap invariant and the appearance of skin modes when this gap is trivialized by an edge, and can expose novel non-Hermitian topological regimes beyond the reach of previous methods.
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Observation of topological edge states in parity-time-symmetric quantum walks

TL;DR: In this article, spontaneous parity and topological edge states are observed in a photonic non-Hermitian system with a quantum walk interferometer, where topological parity is achieved by time symmetry breaking.
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Non-Hermitian robust edge states in one dimension: Anomalous localization and eigenspace condensation at exceptional points

TL;DR: In this paper, the authors put forward a different ordering unique to non-Hermitian lattices whereby a pristine system becomes devoid of extended states, a property which turns out to be robust to disorder.
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Selective enhancement of topologically induced interface states in a dielectric resonator chain

TL;DR: A topologically induced defect state is realized in a chain of dielectric microwave resonators and it is shown that the functionality of the system can be enhanced by supplementing topological protection with non-hermitian symmetries that do not have an electronic counterpart.
Journal ArticleDOI

Edge-Mode Lasing in 1D Topological Active Arrays.

TL;DR: The experimental and theoretical results demonstrate that, in the presence of chiral-time symmetry, this non-Hermitian topological structure can experience phase transitions that are dictated by a complex geometric phase.
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