| Literature DB >> 27925719 |
L F Livi1,2, G Cappellini3,2, M Diem4,5, L Franchi3, C Clivati5, M Frittelli5, F Levi5, D Calonico5, J Catani1,2,6, M Inguscio1,3,2, L Fallani1,3,2,6.
Abstract
We demonstrate a novel way of synthesizing spin-orbit interactions in ultracold quantum gases, based on a single-photon optical clock transition coupling two long-lived electronic states of two-electron ^{173}Yb atoms. By mapping the electronic states onto effective sites along a synthetic "electronic" dimension, we have engineered fermionic ladders with synthetic magnetic flux in an experimental configuration that has allowed us to achieve uniform fluxes on a lattice with minimal requirements and unprecedented tunability. We have detected the spin-orbit coupling with fiber-link-enhanced clock spectroscopy and directly measured the emergence of chiral edge currents, probing them as a function of the flux. These results open new directions for the investigation of topological states of matter with ultracold atomic gases.Year: 2016 PMID: 27925719 DOI: 10.1103/PhysRevLett.117.220401
Source DB: PubMed Journal: Phys Rev Lett ISSN: 0031-9007 Impact factor: 9.161