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Photonic Floquet topological insulators

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TLDR
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.
Abstract
Topological insulators are a new phase of matter, with the striking property that conduction of electrons occurs only on their surfaces. In two dimensions, electrons on the surface of a topological insulator are not scattered despite defects and disorder, providing robustness akin to that of superconductors. Topological insulators are predicted to have wide-ranging applications in fault-tolerant quantum computing and spintronics. Substantial effort has been directed towards realizing topological insulators for electromagnetic waves. One-dimensional systems with topological edge states have been demonstrated, but these states are zero-dimensional and therefore exhibit no transport properties. Topological protection of microwaves has been observed using a mechanism similar to the quantum Hall effect, by placing a gyromagnetic photonic crystal in an external magnetic field. But because magnetic effects are very weak at optical frequencies, realizing photonic topological insulators with scatter-free edge states requires a fundamentally different mechanism-one that is free of magnetic fields. A number of proposals for photonic topological transport have been put forward recently. One suggested temporal modulation of a photonic crystal, thus breaking time-reversal symmetry and inducing one-way edge states. This is in the spirit of the proposed Floquet topological insulators, in which temporal variations in solid-state systems induce topological edge states. Here we propose 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. Our system is composed of an array of evanescently coupled helical waveguides arranged in a graphene-like honeycomb lattice. Paraxial diffraction of light is described by a Schrodinger equation where the propagation coordinate (z) acts as 'time'. Thus the helicity of the waveguides breaks z-reversal symmetry as proposed for Floquet topological insulators. This structure results in one-way edge states that are topologically protected from scattering.

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Citations
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Photonic Floquet media with a complex time-periodic permittivity

TL;DR: In this article, the formation of exceptional points (EPs) in a photonic medium with a complex time-periodic permittivity was studied, and it was shown that the two EPs at the upper and lower edges of the $k$ gap have opposite chiralities in the stroboscopic sense.
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Realization of uniform synthetic magnetic fields by periodically shaking an optical square lattice

TL;DR: In this paper, a detailed comparison with a method based on moving lattices, which are added on top of a main static optical lattice, is provided, with direct implications for cold-atom experiments and photonics.
Journal ArticleDOI

One-way helical electromagnetic wave propagation supported by magnetized plasma.

TL;DR: In this paper, the authors reveal the presence of photonic one-way helical surface states in a simple natural system- magnetized plasma, and numerically investigate an interface between magnetized plasmas, using a realistic model for parameter dispersion, and vacuum, to confirm the existence of oneway scatter-immune helical surfaces states.
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Singular flat bands

TL;DR: In this paper, the authors review recent progress in the study of flat band systems, especially focusing on the fundamental physics related to the singularity of the flat band's Bloch wave functions.
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Topological optical isolator based on polariton graphene

TL;DR: In this paper, a topological optical isolator based on the quantum anomalous Hall effect with strongly coupled exciton-polaritons in a patterned GaAs cavity was proposed.
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New Method for High-Accuracy Determination of the Fine-Structure Constant Based on Quantized Hall Resistance

TL;DR: In this article, the Hall voltage of a two-dimensional electron gas, realized with a silicon metal-oxide-semiconductor field effect transistor, was measured and it was shown that the Hall resistance at particular, experimentally well-defined surface carrier concentrations has fixed values which depend only on the fine-structure constant and speed of light, and is insensitive to the geometry of the device.
Journal ArticleDOI

Quantized Hall conductance in a two-dimensional periodic potential

TL;DR: In this article, the Hall conductance of a two-dimensional electron gas has been studied in a uniform magnetic field and a periodic substrate potential, where the Kubo formula is written in a form that makes apparent the quantization when the Fermi energy lies in a gap.
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