Search arXivSearch

arXiv · 2008.06493

Topological Anderson phase in quasi-periodic waveguide lattices

Abstract

The topological trivial band of a lattice can be driven into a topological phase by disorder in the system. This so-called topological Anderson phase has been predicted and observed for uncorrelated static disorder, while in the presence of correlated disorder conflicting results are found. Here we consider a Su-Schrieffer-Heeger (SSH) waveguide lattice in the trivial topological phase, and show that quasi-periodic disorder in the coupling constants can drive the lattice into a topological non-trivial phase. A method to detect the emergence of the topological Anderson phase, based on light dynamics at the edge of a quasi-periodic waveguide lattice, is suggested.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

Stefano Longhi. 2020-08-14. Topological Anderson phase in quasi-periodic waveguide lattices. https://doi.org/10.1364/ol.399742

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related papers

Model and theory of dark photons in the visible light range

This paper explores the possibility of the existence of dark photons within the visible light range and provides evidence for their existence through a thought experiment. A new model of dark photons is established based on extensive theoretical research, forming a comprehensive theory of dark photons. This theory provides a reasonable explanation for certain perplexing optical phenomena, such as the wave-particle duality of light, Young's double-slit experiment, as well as phenomena like dark matter, dark energy, stellar spectral redshift, and negative time. Furthermore, this theory holds reference value for studying the properties of other fundamental particles and exploring quantum gravity.

physics.optics

Pulsed heterodyne detection enables fiber-compatible, high-specificity Brillouin biomechanics in intact tissue and the living brain

Brillouin microscopy provides label-free, three-dimensional mechanical characterization of biological specimens, but current dispersive detection imposes two limits: the fiber background folds onto the sample spectrum, precluding single-fiber operation, and a ~250 MHz dispersion-induced instrumental broadening blurs mechanically distinct components within a focal volume. Here, we introduce pulsed heterodyne Brillouin detection (PHBD), which retrieves the spectrum electronically from temporal beat notes, overcoming both limitations. The fiber background beats outside the detection band and is rejected; elimination of dispersive broadening yields 25-MHz spectrometer resolution. Pulsed excitation reaches Brillouin-signal-shot-noise-limited detection, attaining 9.0-MHz shift precision in 3 ms at 30 mW in water with 53-fold improvement in energy efficiency over continuous-wave excitation. Through a bare 125-um fiber, PHBD resolves regional contrast along a 4-mm insertion track in the living mouse brain; in free space, it resolves distinct Brillouin components from the cell wall and adjacent cytoplasm in strongly scattering Arabidopsis root tips with epi-mode.

physics.optics

Phase Angle and Effective Second-Harmonic Generation Coefficient

In this paper, the calculation formulae of phase angle are given for two classes of largest effective SHG coefficients in uniaxial crystals by means of the optimization theory. With the help of such calculation formulae, we present the best phase angles and azimuth angles of all uniaxial crystals class, as well as their effective SHG coefficients. Furthermore, these calculation is only dependent upon some principal subtensor of second order susceptibility tensor.

physics.optics