| Literature DB >> 35484331 |
Georgios G Pyrialakos1,2, Julius Beck3, Matthias Heinrich3, Lukas J Maczewsky3, Nikolaos V Kantartzis2, Mercedeh Khajavikhan4, Alexander Szameit3, Demetrios N Christodoulides5.
Abstract
Topological theories have established a unique set of rules that govern the transport properties in a wide variety of wave-mechanical settings. In a marked departure from the established approaches that induce Floquet topological phases by specifically tailored discrete coupling protocols or helical lattice motions, we introduce a class of bimorphic Floquet topological insulators that leverage connective chains with periodically modulated on-site potentials to reveal rich topological features in the system. In exploring a 'chain-driven' generalization of the archetypical Floquet honeycomb lattice, we identify a rich phase structure that can host multiple non-trivial topological phases associated simultaneously with both Chern-type and anomalous chiral states. Experiments carried out in photonic waveguide lattices reveal a strongly confined helical edge state that, owing to its origin in bulk flat bands, can be set into motion in a topologically protected fashion, or halted at will, without compromising its adherence to individual lattice sites.Entities:
Year: 2022 PMID: 35484331 DOI: 10.1038/s41563-022-01238-w
Source DB: PubMed Journal: Nat Mater ISSN: 1476-1122 Impact factor: 43.841