English
 
Help Privacy Policy Disclaimer
  Advanced SearchBrowse

Item

ITEM ACTIONSEXPORT

Released

Journal Article

Realization of an anomalous Floquet topological system with ultracold atoms

MPS-Authors
/persons/resource/persons184474

Eckardt,  André
Max Planck Institute for the Physics of Complex Systems, Max Planck Society;

External Resource
No external resources are shared
Fulltext (restricted access)
There are currently no full texts shared for your IP range.
Fulltext (public)

2002.09840.pdf
(Preprint), 7MB

Supplementary Material (public)
There is no public supplementary material available
Citation

Wintersperger, K., Braun, C., Unal, F. N., Eckardt, A., Di Liberto, M., Goldman, N., et al. (2020). Realization of an anomalous Floquet topological system with ultracold atoms. Nature Physics. doi:10.1038/s41567-020-0949-y.


Cite as: https://hdl.handle.net/21.11116/0000-0007-4344-1
Abstract
Standard topological invariants commonly used in static systems are not enough to fully capture the topological properties of Floquet systems. In a periodically driven quantum gas, chiral edge modes emerge despite all Chern numbers being equal to zero.
Coherent control via periodic modulation, also known as Floquet engineering, has emerged as a powerful experimental method for the realization of novel quantum systems with exotic properties. In particular, it has been employed to study topological phenomena in a variety of different platforms. In driven systems, the topological properties of the quasienergy bands can often be determined by standard topological invariants, such as Chern numbers, which are commonly used in static systems. However, due to the periodic nature of the quasienergy spectrum, this topological description is incomplete and new invariants are required to fully capture the topological properties of these driven settings. Most prominently, there are two-dimensional anomalous Floquet systems that exhibit robust chiral edge modes, despite all Chern numbers being equal to zero. Here we realize such a system with bosonic atoms in a periodically driven honeycomb lattice and infer the complete set of topological invariants from energy gap measurements and local Hall deflections.