English

Microwave trap for atoms and molecules

Atomic Physics 2019-10-30 v2

Abstract

We demonstrate a trap that confines polarizable particles around the antinode of a standing-wave microwave field. The trap relies only on the polarizability of the particles far from any resonances, so can trap a wide variety of atoms and molecules in a wide range of internal states, including the ground state. The trap has a volume of about 10 cm3^3, and a depth approaching 1 K for many polar molecules. We measure the trap properties using 7^{7}Li atoms, showing that when the input microwave power is 610 W, the atoms remain trapped with a 1/e1/e lifetime of 1.76(12) s, oscillating with an axial frequency of 28.55(5) Hz and a radial frequency of 8.81(8) Hz. The trap could be loaded with slow molecules from a range of available sources, and is particularly well suited to sympathetic cooling and evaporative cooling of molecules.

Cite

@article{arxiv.1906.05380,
  title  = {Microwave trap for atoms and molecules},
  author = {S. C. Wright and T. E. Wall and M. R. Tarbutt},
  journal= {arXiv preprint arXiv:1906.05380},
  year   = {2019}
}

Comments

7 pages, 6 figures. Modified figure 5, added figure 6, added further discussion of applications

R2 v1 2026-06-23T09:52:05.567Z