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Observation of unidirectional backscattering-immune topological electromagnetic states

TLDR
It is demonstrated that, like their electronic counterparts, electromagnetic CESs can travel in only one direction and are very robust against scattering from disorder; it is found that even large metallic scatterers placed in the path of the propagating edge modes do not induce reflections.
Abstract
One of the most striking phenomena in condensed-matter physics is the quantum Hall effect, which arises in two-dimensional electron systems subject to a large magnetic field applied perpendicular to the plane in which the electrons reside. In such circumstances, current is carried by electrons along the edges of the system, in so-called chiral edge states (CESs). These are states that, as a consequence of nontrivial topological properties of the bulk electronic band structure, have a unique directionality and are robust against scattering from disorder. Recently, it was theoretically predicted that electromagnetic analogues of such electronic edge states could be observed in photonic crystals, which are materials having refractive-index variations with a periodicity comparable to the wavelength of the light passing through them. Here we report the experimental realization and observation of such electromagnetic CESs in a magneto-optical photonic crystal fabricated in the microwave regime. We demonstrate that, like their electronic counterparts, electromagnetic CESs can travel in only one direction and are very robust against scattering from disorder; we find that even large metallic scatterers placed in the path of the propagating edge modes do not induce reflections. These modes may enable the production of new classes of electromagnetic device and experiments that would be impossible using conventional reciprocal photonic states alone. Furthermore, our experimental demonstration and study of photonic CESs provides strong support for the generalization and application of topological band theories to classical and bosonic systems, and may lead to the realization and observation of topological phenomena in a generally much more controlled and customizable fashion than is typically possible with electronic systems.

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Journal ArticleDOI

Weyl and Dirac semimetals in three-dimensional solids

TL;DR: Weyl and Dirac semimetals as discussed by the authors are three-dimensional phases of matter with gapless electronic excitations that are protected by topology and symmetry, and they have generated much recent interest.
Journal ArticleDOI

Topological Photonics

TL;DR: Topological photonics is a rapidly emerging field of research in which geometrical and topological ideas are exploited to design and control the behavior of light as mentioned in this paper, which holds great promise for applications.
Journal ArticleDOI

Photonic Floquet topological insulators

TL;DR: This work proposes and experimentally demonstrate a photonic topological insulator free of external fields and with scatter-free edge transport—a photonic lattice exhibiting topologically protected transport of visible light on the lattice edges.
Journal ArticleDOI

Non-Hermitian physics and PT symmetry

TL;DR: In this paper, the interplay between parity-time symmetry and non-Hermitian physics in optics, plasmonics and optomechanics has been explored both theoretically and experimentally.
Journal ArticleDOI

Photonic topological insulators

TL;DR: It is shown that metacrystals-superlattices of metamaterials with judiciously designed properties-provide a platform for designing topologically non-trivial photonic states, similar to those identified for condensed-matter topological insulators.
References
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Journal ArticleDOI

Analogs of quantum-Hall-effect edge states in photonic crystals

TL;DR: In this article, it was shown that photonic crystals built with time-reversal-symmetry-breaking Faraday-effect media can exhibit chiral edge modes that propagate unidirectionally along boundaries across which the Faraday axis reverses.
Journal ArticleDOI

Complete optical isolation created by indirect interband photonic transitions

TL;DR: It is shown here that a linear, broadband and non-reciprocal isolation can be accomplished by spatial–temporal refractive index modulations that simultaneously impart frequency and wavevector shifts during the photonic transition process.
Journal ArticleDOI

Topological invariant and the quantization of the Hall conductance

TL;DR: In this paper, the topological aspects of wavefunctions for electrons in a two-dimensional periodic potential with a magnetic field are discussed, and the linear response formula for the Hall conductance σxy is shown to be related to the number of zeros in the magnetic Brillouin zone.
Journal Article

Quantum Spin Hall Effect and Topological Phase Transition in HgTe Quantum Wells

TL;DR: It is shown that the quantum spin Hall (QSH) effect, a state of matter with topological properties distinct from those of conventional insulators, can be realized in mercuryTelluride–cadmium telluride semiconductor quantum wells.
Proceedings ArticleDOI

Complete optical isolation created by indirect interband photonic transitions

TL;DR: In this paper, a linear, broadband, and non-reciprocal signal isolation is achieved by spatial-temporal modulations that simultaneously impart frequency and wavevector shifts during the photonic transition process.
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