arXiv · 2311.13920
Hollow-core fiber loading of nanoparticles into ultra-high vacuum
Abstract
Many experiments in the field of optical levitation with nanoparticles today are limited by the available technologies for particle loading. Here we introduce a new particle loading method that solves the main challenges, namely deterministic positioning of the particles and clean delivery at ultra-high vacuum levels as required for quantum experiments. We demonstrate the efficient loading, positioning, and repositioning of nanoparticles in the range of $100-755\,\mathrm{nm}$ diameter into different lattice sites of a standing wave optical trap, as well as direct loading of nanoparticles at an unprecedented pressure below $10^{-9}\,\mathrm{mbar}$. Our method relies on the transport of nanoparticles within a hollow-core photonic crystal fiber using an optical conveyor belt, which can be precisely positioned with respect to the target trap. Our work opens the path for increasing nanoparticle numbers in the study of multiparticle dynamics and high turn-around times for exploiting the quantum regime of levitated solids in ultra-high vacuum.
Explore related subjects
Keep this discovery
Stefan Lindner, Paul Juschitz, Jakob Rieser, Yaakov Y. Fein, Mario Ciampini, Markus Aspelmeyer, Nikolai Kiesel. 2023-11-23. Hollow-core fiber loading of nanoparticles into ultra-high vacuum. https://arxiv.org/abs/2311.13920
Cite the original work for its findings. Save a collection to share your selection of sources.