arXiv · 1807.05860
A trapped ultracold atom force sensor with a $\mu$m-scale spatial resolution
Abstract
We report on the use of an ultracold ensemble of $^{87}$Rb atoms trapped in a vertical lattice as a source for a quantum force sensor based on a Ramsey-Raman type interferometer. We reach spatial resolution in the low micrometer range in the vertical direction thanks to evaporative cooling down to ultracold temperatures in a crossed optical dipole trap. In this configuration, the coherence time of the atomic ensemble is degraded by inhomogeneous dephasing arising from atomic interactions. By weakening the confinement in the transverse direction only, we dilute the cloud and drastically reduce the strength of these interactions, without affecting the vertical resolution. This allows to maintain an excellent relative sensitivity on the Bloch frequency, which is related to the local gravitational force, of $5\times10^{-6}$ at 1\,s which integrates down to $8\times10^{-8}$ after one hour averaging time.
Explore related subjects
Keep this discovery
Xavier Alauze, Alexis Bonnin, Cyrille Solaro, Franck Pereira Dos Santos. 2018-07-16. A trapped ultracold atom force sensor with a $\mu$m-scale spatial resolution. https://doi.org/10.1088/1367-2630%2Faad716
Cite the original work for its findings. Save a collection to share your selection of sources.