Excited-Band Coherent Delocalization for Improved Optical Lattice Clock Performance
Abstract
We implement coherent delocalization as a tool for improving the two primary metrics of atomic clock performance: systematic uncertainty and instability. By decreasing atomic density with coherent delocalization, we suppress cold-collision shifts and two-body losses. Atom loss attributed to Landau-Zener tunneling in the ground lattice band would compromise coherent delocalization at low trap depths for our Yb atoms; hence, we implement for the first time delocalization in excited lattice bands. Doing so increases the spatial distribution of atoms trapped in the vertically-oriented optical lattice by times. At the same time we observe a reduction of the cold-collision shift by 6.5(8) times, while also making inelastic two-body loss negligible. With these advantages, we measure the trap-light-induced quenching rate and natural lifetime of the P excited-state as and 19(2) s, respectively.
Cite
@article{arxiv.2402.04968,
title = {Excited-Band Coherent Delocalization for Improved Optical Lattice Clock Performance},
author = {Jacob Siegel and William McGrew and Youssef Hassan and Chun-Chia Chen and Kyle Beloy and Tanner Grogan and Xiaogang Zhang and Andrew Ludlow},
journal= {arXiv preprint arXiv:2402.04968},
year = {2024}
}