arXiv · 1907.08910
Realization of a fractional period adiabatic superlattice
Abstract
We propose and realize a deeply sub-wavelength optical lattice for ultracold neutral atoms using $N$ resonantly Raman-coupled internal degrees of freedom. Although counter-propagating lasers with wavelength $\lambda$ provided two-photon Raman coupling, the resultant lattice-period was $\lambda/2N$, an $N$-fold reduction as compared to the conventional $\lambda/2$ lattice period. We experimentally demonstrated this lattice built from the three $F=1$ Zeeman states of a $^{87}{\rm Rb}$ Bose-Einstein condensate, and generated a lattice with a $\lambda/6= 132\ {\rm nm}$ period from $\lambda=790 \ {\rm nm}$ lasers. Lastly, we show that adding an additional RF coupling field converts this lattice into a superlattice with $N$ wells uniformly spaced within the original $\lambda/2$ unit cell.
Explore related subjects
Keep this discovery
R. P. Anderson, D. Trypogeorgos, A. Valdés-Curiel, Q. -Y. Liang, J. Tao, M. Zhao, T. Andrijauskas, G. Juzeliūnas, I. B. Spielman. 2019-07-21. Realization of a fractional period adiabatic superlattice. https://doi.org/10.1103/physrevresearch.2.013149
Cite the original work for its findings. Save a collection to share your selection of sources.