Tunable Anomalous Diffusion in Subrecoil-Laser-Cooled Atoms
Abstract
The control of atomic motion through laser cooling has revolutionized quantum technologies, enabling applications ranging from quantum computing to precision metrology. However, the spatial spreading of subrecoil-laser-cooled atoms -- crucial for understanding cooling mechanisms and atomic confinement -- remains largely unexplored. Here, we analyze anomalous diffusion in subrecoil-laser-cooled atoms, where a velocity-dependent fluorescence rate governs transport properties. By tuning , we uncover transitions between normal, subdiffusive, and superdiffusive regimes. Notably, at , diffusion is minimized, leading to optimal atomic confinement. These findings advance the understanding of anomalous transport in laser-cooled systems and offer new avenues for precise control of atomic motion.
Cite
@article{arxiv.2503.15027,
title = {Tunable Anomalous Diffusion in Subrecoil-Laser-Cooled Atoms},
author = {Soma Shiraki and Eli Barkai and Takuma Akimoto},
journal= {arXiv preprint arXiv:2503.15027},
year = {2025}
}
Comments
9 pages, 4 figures